Creator · indranilbanerjee
Last updated · Sep 2, 2026
Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends
Creator · indranilbanerjee
Last updated · Sep 2, 2026
Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends
Creator · indranilbanerjee
Last updated · Sep 2, 2026
Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends
Creator · indranilbanerjee
Last updated · Sep 2, 2026
Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends
Sandbox only
Install targets
Codex install prompt
Install the "budget-optimizer" agent skill from https://github.com/indranilbanerjee/digital-marketing-pro/tree/main/skills/budget-optimizer. Read its SKILL.md or equivalent instructions first, install only the files needed for this workspace, and summarize any required setup before using it. Skill purpose: Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends shifts only; it never changes spend on any platform. Triggers on \"/digital-marketing-pro:budget-optimizer\", \"optimize my marketing budget\", \"which channels should get more spend\", \"reallocate budget based on ROAS\", \"is our channel split right\". Reads the brand profile and guidelines, runs scripts/budget-optimizer.py, and pairs with /digital-marketing-pro:budget-tracker for in-flight pacing. After the install attempt, report the result to https://www.openagentskill.com/api/agent/outcome with POST JSON {"event_id":"install_<unique-id>","skill_slug":"indranilbanerjee-budget-optimizer","task":"Install budget-optimizer","agent":"codex","outcome":"success","install_used":true}. Replace event_id with a unique value and outcome with success or failed. Report success only after the skill is installed and a minimal verification passes.Supply asset profile
SEO, content operations, lead generation, CRM, email automation, analytics, and growth workflows.
Scenario
Marketing and growth
I need my agent to research keywords, improve SEO, analyze growth channels, and prepare marketing workflows.
Agent fit
Claude Code + CLI + Codex
Codex, Claude Code, Cursor, CLI, or custom agents.
Install
Ready
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Maintenance
fresh
19d since push
Risk
Needs review
Financial research output is not financial advice; require human review before any live investment decision
GitHub quality
787
76/100 Quality · 82/100 Trust
Coverage tags
Review notes
Financial research output is not financial advice; require human review before any live investment decision · Financial research output is not financial advice; require human review before any live investment decision.
Agent adoption scorecard
These scores combine public repository metadata, OpenAgentSkill review signals, maintenance freshness, and install readiness. They are a shortlist signal, not a replacement for human review.
Quality
StrongSolid option that is likely worth shortlisting for production workflows.
Trust
Sandbox onlyUseful candidate with missing or mixed trust signals. Keep it in an isolated workspace until the outcome loop proves task fit.
Audit
Needs reviewA machine-readable review of install readiness, security metadata, maintenance, and adoption risk.
OpenAgentSkill Trust Score v5
Run only in a sandbox and compare close alternatives before using it for real work.
Stars
787 GitHub stars
Repo activity
787 stars, 132 forks
Maintenance
19d since push
License
MIT
Install
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Install safety
Agent-readable metadata
Use this block or the embedded JSON to decide whether an agent should install this skill, choose an alternative, or ask for human review first.
Suited tasks
Suited agents
Install decision
Trust and risk
Outcome loop
Install command
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizerDo not use when
Alternative
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npx skills add Leonxlnx/taste-skill --skill design-taste-frontend
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npx skills add Alisa0808/vox-director --skill vox-director
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npx skills add anthropics/skills --skill canvas-design
Agent safety v2
Usable candidate, but the agent should surface permission and audit notes before installation.
Require human approval before installing into a real workspace.
medium
Skill likely fetches remote pages, APIs, repositories, or external services.
medium
Skill may read or write project files, documents, generated artifacts, or local workspace state.
Agent resolve plan
The Resolve API returns the selected skill, alternatives, safety policy, audit notes, install target, and copy-paste prompt an agent can follow without scraping this page.
Open JSON
/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium
Resolve text
/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium&format=text
Install handoff
/api/skills/indranilbanerjee-budget-optimizer/install
Agent should check
Copy prompt
Task: Use budget-optimizer in this workspace.
Resolve first: https://www.openagentskill.com/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium
Review install handoff: https://www.openagentskill.com/api/skills/indranilbanerjee-budget-optimizer/install
Install command: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Before running it, summarize audit warnings, required permissions, and the fallback skill if install is risky.Agent handoff
Use the public install endpoint to fetch the command, safety checklist, target prompts, and canonical links for this skill.
Install handoff
/api/skills/indranilbanerjee-budget-optimizer/install
LLM text format
/api/skills/indranilbanerjee-budget-optimizer/install?format=text
Find alternatives
/api/skills/search?q=budget-optimizer&limit=3
Agent prompt
Use budget-optimizer for this task. Review https://www.openagentskill.com/api/skills/indranilbanerjee-budget-optimizer/install, then install with: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizerRegistry metadata
This page exposes the same decision, trust, audit, use-case, and install signals through the Registry API, so agents can rank this skill without scraping the UI.
Manifest
/api/registry/manifest/indranilbanerjee-budget-optimizer
LLM text
/api/registry/manifest/indranilbanerjee-budget-optimizer?format=text
Install alias
/api/registry/install/indranilbanerjee-budget-optimizer
Recommend
/api/registry/recommend?task=Use%20budget-optimizer%20in%20an%20agent%20workflow&limit=3
Agent fit
Research agents
Use-case tags
Platforms
Claude Code
Audit report
A machine-readable review of install readiness, security metadata, maintenance, and adoption risk.
Agent decision cockpit
Use this as a leading candidate, then validate the README and install path in your own agent stack.
Role in stack
Primary pick
Primary fit
Research agents
Trust label
Production-ready
Install path
Command ready
Use when
Evidence
review first
Implementation path
Trust profile
Useful candidate with missing or mixed trust signals. Keep it in an isolated workspace until the outcome loop proves task fit.
GitHub adoption
INFO787 GitHub stars
Stars/forks activity
INFO787 stars, 132 forks; issue activity unavailable in current metadata
Recent maintenance
PASS19d since push
License clarity
PASSMIT
Good signals
Review before install
Recommended action
Run only in a sandbox and compare close alternatives before using it for real work.
Quality profile
Solid option that is likely worth shortlisting for production workflows.
Workflow fit
Investigate faster
I need my agent to research a topic, compare sources, and produce a concise report.
Grow distribution
I need my agent to research keywords, improve SEO, analyze growth channels, and prepare marketing workflows.
Analyze datasets
I need my agent to analyze CSV data, produce insights, and explain trends.
Workflow fit
Find, compare, and synthesize
A workflow for agents that gather sources, compare claims, summarize long material, and draft useful research briefs.
Turn skills into distribution
A workflow for turning newly indexed skills into SEO briefs, social drafts, comparison pages, and reusable publishing workflows.
Operate and verify web apps
A workflow for agents that navigate products, fill forms, take screenshots, and verify real user flows across web applications.
Alternative shortlist
Similar skills that may fit this task.
Guidance for distinctive, intentional UI design, typography, visual direction, and non-template-like product interfaces.
Design and implementation guidance for distinctive landing pages, portfolios, product demos, and purposeful redesigns.
Turn one topic into a narrated Vox-style paper-collage explainer or ad video, from script through captions.
Create original visual art, posters, PNG assets, and PDF documents through a clear design philosophy.
--- name: budget-optimizer description: "Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends shifts only; it never changes spend on any platform. Triggers on \"/digital-marketing-pro:budget-optimizer\", \"optimize my marketing budget\", \"which channels should get more spend\", \"reallocate budget based on ROAS\", \"is our channel split right\". Reads the brand profile and guidelines, runs scripts/budget-optimizer.py, and pairs with /digital-marketing-pro:budget-tracker for in-flight pacing." argument-hint: "[total-budget]" ---
# /digital-marketing-pro:budget-optimizer
## Purpose
Data-driven marketing budget optimization across channels using performance data and industry benchmarks. Analyzes current spend efficiency, models diminishing returns per channel, and produces an optimized allocation with projected ROI improvement and a phased reallocation timeline.
## Input Required
The user must provide (or will be prompted for):
- **Current budget by channel**: How spend is distributed today (e.g., paid search, paid social, SEO, email, content, display, affiliate, events, etc.) - **Performance data by channel**: Key metrics per channel — spend, revenue or conversions, CPA, ROAS, and conversion volume over the measurement period - **Total budget available**: Overall marketing budget for the optimization period (monthly, quarterly, or annual) - **Business goals**: Primary objective — maximize revenue, minimize CPA, hit a specific lead or revenue target, balance growth with efficiency - **Constraints**: Minimum spend requirements, channel mandates from leadership, seasonal considerations, contractual commitments, or platform minimums - **Measurement period**: Timeframe the performance data covers (last 30, 60, 90 days, or custom range) - **Attribution model**: How conversions are currently attributed (last-click, first-click, linear, data-driven, or unknown) - **Seasonality factors**: Upcoming seasonal peaks, promotional periods, or industry events that affect channel performance - **Historical context**: Whether performance data reflects a typical period or was influenced by one-time events (product launch, viral moment, outage)
## Process
1. **Load brand context**: Read `~/.claude-marketing/brands/_active-brand.json` for the active slug, then load `~/.claude-marketing/brands/{slug}/profile.json`. Apply brand voice, compliance rules for target markets (`skills/context-engine/compliance-rules.md`), and industry context. **Also check for guidelines** at `~/.claude-marketing/brands/{slug}/guidelines/_manifest.json` — if present, load restrictions and relevant category files. Check for custom templates at `~/.claude-marketing/brands/{slug}/templates/`. Check for agency SOPs at `~/.claude-marketing/sops/`. If no brand exists, ask: "Set up a brand first (/digital-marketing-pro:brand-setup)?" — or proceed with defaults. 2. **Run budget-optimizer.py script**: Execute `python "${CLAUDE_PLUGIN_ROOT}/scripts/budget-optimizer.py" --channels '[{"name":"google_ads","spend":10000,"roas":4.2}]' --total-budget {amount}` (`--total-budget` is required; pass channel data via `--channels` JSON or `--file`) to compute baseline efficiency metrics and generate optimization scenarios 3. **Calculate efficiency metrics per channel**: Compute ROAS, CPA, cost per lead, revenue per dollar, contribution margin, and marginal cost of acquisition for each channel 4. **Rank channels by marginal efficiency**: Order channels by incremental return per additional dollar spent, accounting for current saturation levels and historical performance trends 5. **Apply diminishing returns model**: Model how each channel's efficiency degrades as spend increases — identify the inflection point and saturation ceiling for each channel 6. **Generate optimized allocation**: Redistribute budget to maximize the stated objective while respecting all constraints and minimum viable spend thresholds 7. **Compare current vs optimized**: Build a side-by-side comparison showing spend shifts, projected metric changes, and net improvement across all KPIs 8. **Project ROI improvement**: Estimate total revenue, conversion volume, ROAS, and CPA gains from the reallocation with confidence intervals 9. **Account for minimum viable spend thresholds**: Ensure no channel drops below the minimum spend needed to generate meaningful data, maintain auction competitiveness, or fulfill contractual obligations 10. **Include testing budget**: Reserve 10-15% of total budget for experimentation — new channels, creative testing, audience expansion, or emerging platforms 11. **Flag attribution caveats**: Note where attribution model limitations may skew efficiency calculations and recommend adjustments 12. **Create reallocation timeline**: Phase budget shifts over 4-8 weeks to avoid performance disruption — gradual ramp-up and ramp-down with weekly checkpoints and rollback triggers
## Output
A structured budget optimization plan containing:
- **Current vs optimized allocation table**: Side-by-side channel budgets with dollar amounts, percentage of total, and change from current - **Projected ROI improvement**: Expected gains in revenue, conversions, ROAS, and CPA with confidence ranges - **Channel efficiency ranking**: Channels ordered by marginal return with diminishing returns curves and saturation indicators - **Reallocation recommendations**: Specific dollar shifts with clear rationale for each increase, decrease, or hold - **Scenario comparison**: Best-case, expected, and conservative projections for the optimized allocation - **Implementation timeline**: Phased reallocation schedule with weekly checkpoints, performance triggers, and rollback criteria - **Risk assessment**: Potential downsides of each shift, minimum viable spend warnings, attribution blind spots, and mitigation strategies - **Testing budget plan**: Recommended experiments with allocated budget, hypotheses, success criteria, and measurement approach - **Attribution notes**: Caveats on how the current attribution model may over- or under-credit specific channels - **Executive summary**: 1-page overview of key findings and recommended actions for stakeholder presentation
## Agents Used
- **analytics-analyst** — Performance data analysis, efficiency calculations, diminishing returns modeling, ROI projections, attribution assessment - **media-buyer** — Channel-level budget strategy, spend threshold expertise, reallocation sequencing, platform-specific benchmarks, auction dynamics
Source provenance
Decision snapshot
787 GitHub stars
Audit
Install and adoption review
Agent-proven evidence
Outcome reports after resolve, review, install, and one narrow run.
No agent outcome data yet. The first agent run can report success, setup needs, risk blocks, failure, or not-relevant through /api/agent/outcome.
Install
Free and open source. Review the report before installing into production agents.
Growth loop
Scenario-led draft for budget-optimizer, ready for a manual X post.
budget-optimizer: Reallocate marketing spend across channels using performance data and diminishing-returns mod... 787 stars https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=x
Listing + install path for budget-optimizer: https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=x Install: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Listing source
This listing was indexed from public sources and is not marked official until a maintainer claim is approved.
Attribution links to the public repository or creator profile. Creators can claim the listing to update ownership signals.
Claim this skillOwner claim
This Registry indexed listing is attributed to indranilbanerjee but is not marked official yet. Claim it to add a verified owner signal and make future launch, install, and audit updates easier to trust.
Creator backlink kit
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Sandbox only
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174.6K StarsSandbox only
Install targets
Codex install prompt
Install the "budget-optimizer" agent skill from https://github.com/indranilbanerjee/digital-marketing-pro/tree/main/skills/budget-optimizer. Read its SKILL.md or equivalent instructions first, install only the files needed for this workspace, and summarize any required setup before using it. Skill purpose: Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends shifts only; it never changes spend on any platform. Triggers on \"/digital-marketing-pro:budget-optimizer\", \"optimize my marketing budget\", \"which channels should get more spend\", \"reallocate budget based on ROAS\", \"is our channel split right\". Reads the brand profile and guidelines, runs scripts/budget-optimizer.py, and pairs with /digital-marketing-pro:budget-tracker for in-flight pacing. After the install attempt, report the result to https://www.openagentskill.com/api/agent/outcome with POST JSON {"event_id":"install_<unique-id>","skill_slug":"indranilbanerjee-budget-optimizer","task":"Install budget-optimizer","agent":"codex","outcome":"success","install_used":true}. Replace event_id with a unique value and outcome with success or failed. Report success only after the skill is installed and a minimal verification passes.Supply asset profile
SEO, content operations, lead generation, CRM, email automation, analytics, and growth workflows.
Scenario
Marketing and growth
I need my agent to research keywords, improve SEO, analyze growth channels, and prepare marketing workflows.
Agent fit
Claude Code + CLI + Codex
Codex, Claude Code, Cursor, CLI, or custom agents.
Install
Ready
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Maintenance
fresh
19d since push
Risk
Needs review
Financial research output is not financial advice; require human review before any live investment decision
GitHub quality
787
76/100 Quality · 82/100 Trust
Coverage tags
Review notes
Financial research output is not financial advice; require human review before any live investment decision · Financial research output is not financial advice; require human review before any live investment decision.
Agent adoption scorecard
These scores combine public repository metadata, OpenAgentSkill review signals, maintenance freshness, and install readiness. They are a shortlist signal, not a replacement for human review.
Quality
StrongSolid option that is likely worth shortlisting for production workflows.
Trust
Sandbox onlyUseful candidate with missing or mixed trust signals. Keep it in an isolated workspace until the outcome loop proves task fit.
Audit
Needs reviewA machine-readable review of install readiness, security metadata, maintenance, and adoption risk.
OpenAgentSkill Trust Score v5
Run only in a sandbox and compare close alternatives before using it for real work.
Stars
787 GitHub stars
Repo activity
787 stars, 132 forks
Maintenance
19d since push
License
MIT
Install
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Install safety
Agent-readable metadata
Use this block or the embedded JSON to decide whether an agent should install this skill, choose an alternative, or ask for human review first.
Suited tasks
Suited agents
Install decision
Trust and risk
Outcome loop
Install command
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizerDo not use when
Alternative
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Alternative
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npx skills add anthropics/skills --skill canvas-design
Agent safety v2
Usable candidate, but the agent should surface permission and audit notes before installation.
Require human approval before installing into a real workspace.
medium
Skill likely fetches remote pages, APIs, repositories, or external services.
medium
Skill may read or write project files, documents, generated artifacts, or local workspace state.
Agent resolve plan
The Resolve API returns the selected skill, alternatives, safety policy, audit notes, install target, and copy-paste prompt an agent can follow without scraping this page.
Open JSON
/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium
Resolve text
/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium&format=text
Install handoff
/api/skills/indranilbanerjee-budget-optimizer/install
Agent should check
Copy prompt
Task: Use budget-optimizer in this workspace.
Resolve first: https://www.openagentskill.com/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium
Review install handoff: https://www.openagentskill.com/api/skills/indranilbanerjee-budget-optimizer/install
Install command: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Before running it, summarize audit warnings, required permissions, and the fallback skill if install is risky.Agent handoff
Use the public install endpoint to fetch the command, safety checklist, target prompts, and canonical links for this skill.
Install handoff
/api/skills/indranilbanerjee-budget-optimizer/install
LLM text format
/api/skills/indranilbanerjee-budget-optimizer/install?format=text
Find alternatives
/api/skills/search?q=budget-optimizer&limit=3
Agent prompt
Use budget-optimizer for this task. Review https://www.openagentskill.com/api/skills/indranilbanerjee-budget-optimizer/install, then install with: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizerRegistry metadata
This page exposes the same decision, trust, audit, use-case, and install signals through the Registry API, so agents can rank this skill without scraping the UI.
Manifest
/api/registry/manifest/indranilbanerjee-budget-optimizer
LLM text
/api/registry/manifest/indranilbanerjee-budget-optimizer?format=text
Install alias
/api/registry/install/indranilbanerjee-budget-optimizer
Recommend
/api/registry/recommend?task=Use%20budget-optimizer%20in%20an%20agent%20workflow&limit=3
Agent fit
Research agents
Use-case tags
Platforms
Claude Code
Audit report
A machine-readable review of install readiness, security metadata, maintenance, and adoption risk.
Agent decision cockpit
Use this as a leading candidate, then validate the README and install path in your own agent stack.
Role in stack
Primary pick
Primary fit
Research agents
Trust label
Production-ready
Install path
Command ready
Use when
Evidence
review first
Implementation path
Trust profile
Useful candidate with missing or mixed trust signals. Keep it in an isolated workspace until the outcome loop proves task fit.
GitHub adoption
INFO787 GitHub stars
Stars/forks activity
INFO787 stars, 132 forks; issue activity unavailable in current metadata
Recent maintenance
PASS19d since push
License clarity
PASSMIT
Good signals
Review before install
Recommended action
Run only in a sandbox and compare close alternatives before using it for real work.
Quality profile
Solid option that is likely worth shortlisting for production workflows.
Workflow fit
Investigate faster
I need my agent to research a topic, compare sources, and produce a concise report.
Grow distribution
I need my agent to research keywords, improve SEO, analyze growth channels, and prepare marketing workflows.
Analyze datasets
I need my agent to analyze CSV data, produce insights, and explain trends.
Workflow fit
Find, compare, and synthesize
A workflow for agents that gather sources, compare claims, summarize long material, and draft useful research briefs.
Turn skills into distribution
A workflow for turning newly indexed skills into SEO briefs, social drafts, comparison pages, and reusable publishing workflows.
Operate and verify web apps
A workflow for agents that navigate products, fill forms, take screenshots, and verify real user flows across web applications.
Alternative shortlist
Similar skills that may fit this task.
Guidance for distinctive, intentional UI design, typography, visual direction, and non-template-like product interfaces.
Design and implementation guidance for distinctive landing pages, portfolios, product demos, and purposeful redesigns.
Turn one topic into a narrated Vox-style paper-collage explainer or ad video, from script through captions.
Create original visual art, posters, PNG assets, and PDF documents through a clear design philosophy.
--- name: budget-optimizer description: "Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends shifts only; it never changes spend on any platform. Triggers on \"/digital-marketing-pro:budget-optimizer\", \"optimize my marketing budget\", \"which channels should get more spend\", \"reallocate budget based on ROAS\", \"is our channel split right\". Reads the brand profile and guidelines, runs scripts/budget-optimizer.py, and pairs with /digital-marketing-pro:budget-tracker for in-flight pacing." argument-hint: "[total-budget]" ---
# /digital-marketing-pro:budget-optimizer
## Purpose
Data-driven marketing budget optimization across channels using performance data and industry benchmarks. Analyzes current spend efficiency, models diminishing returns per channel, and produces an optimized allocation with projected ROI improvement and a phased reallocation timeline.
## Input Required
The user must provide (or will be prompted for):
- **Current budget by channel**: How spend is distributed today (e.g., paid search, paid social, SEO, email, content, display, affiliate, events, etc.) - **Performance data by channel**: Key metrics per channel — spend, revenue or conversions, CPA, ROAS, and conversion volume over the measurement period - **Total budget available**: Overall marketing budget for the optimization period (monthly, quarterly, or annual) - **Business goals**: Primary objective — maximize revenue, minimize CPA, hit a specific lead or revenue target, balance growth with efficiency - **Constraints**: Minimum spend requirements, channel mandates from leadership, seasonal considerations, contractual commitments, or platform minimums - **Measurement period**: Timeframe the performance data covers (last 30, 60, 90 days, or custom range) - **Attribution model**: How conversions are currently attributed (last-click, first-click, linear, data-driven, or unknown) - **Seasonality factors**: Upcoming seasonal peaks, promotional periods, or industry events that affect channel performance - **Historical context**: Whether performance data reflects a typical period or was influenced by one-time events (product launch, viral moment, outage)
## Process
1. **Load brand context**: Read `~/.claude-marketing/brands/_active-brand.json` for the active slug, then load `~/.claude-marketing/brands/{slug}/profile.json`. Apply brand voice, compliance rules for target markets (`skills/context-engine/compliance-rules.md`), and industry context. **Also check for guidelines** at `~/.claude-marketing/brands/{slug}/guidelines/_manifest.json` — if present, load restrictions and relevant category files. Check for custom templates at `~/.claude-marketing/brands/{slug}/templates/`. Check for agency SOPs at `~/.claude-marketing/sops/`. If no brand exists, ask: "Set up a brand first (/digital-marketing-pro:brand-setup)?" — or proceed with defaults. 2. **Run budget-optimizer.py script**: Execute `python "${CLAUDE_PLUGIN_ROOT}/scripts/budget-optimizer.py" --channels '[{"name":"google_ads","spend":10000,"roas":4.2}]' --total-budget {amount}` (`--total-budget` is required; pass channel data via `--channels` JSON or `--file`) to compute baseline efficiency metrics and generate optimization scenarios 3. **Calculate efficiency metrics per channel**: Compute ROAS, CPA, cost per lead, revenue per dollar, contribution margin, and marginal cost of acquisition for each channel 4. **Rank channels by marginal efficiency**: Order channels by incremental return per additional dollar spent, accounting for current saturation levels and historical performance trends 5. **Apply diminishing returns model**: Model how each channel's efficiency degrades as spend increases — identify the inflection point and saturation ceiling for each channel 6. **Generate optimized allocation**: Redistribute budget to maximize the stated objective while respecting all constraints and minimum viable spend thresholds 7. **Compare current vs optimized**: Build a side-by-side comparison showing spend shifts, projected metric changes, and net improvement across all KPIs 8. **Project ROI improvement**: Estimate total revenue, conversion volume, ROAS, and CPA gains from the reallocation with confidence intervals 9. **Account for minimum viable spend thresholds**: Ensure no channel drops below the minimum spend needed to generate meaningful data, maintain auction competitiveness, or fulfill contractual obligations 10. **Include testing budget**: Reserve 10-15% of total budget for experimentation — new channels, creative testing, audience expansion, or emerging platforms 11. **Flag attribution caveats**: Note where attribution model limitations may skew efficiency calculations and recommend adjustments 12. **Create reallocation timeline**: Phase budget shifts over 4-8 weeks to avoid performance disruption — gradual ramp-up and ramp-down with weekly checkpoints and rollback triggers
## Output
A structured budget optimization plan containing:
- **Current vs optimized allocation table**: Side-by-side channel budgets with dollar amounts, percentage of total, and change from current - **Projected ROI improvement**: Expected gains in revenue, conversions, ROAS, and CPA with confidence ranges - **Channel efficiency ranking**: Channels ordered by marginal return with diminishing returns curves and saturation indicators - **Reallocation recommendations**: Specific dollar shifts with clear rationale for each increase, decrease, or hold - **Scenario comparison**: Best-case, expected, and conservative projections for the optimized allocation - **Implementation timeline**: Phased reallocation schedule with weekly checkpoints, performance triggers, and rollback criteria - **Risk assessment**: Potential downsides of each shift, minimum viable spend warnings, attribution blind spots, and mitigation strategies - **Testing budget plan**: Recommended experiments with allocated budget, hypotheses, success criteria, and measurement approach - **Attribution notes**: Caveats on how the current attribution model may over- or under-credit specific channels - **Executive summary**: 1-page overview of key findings and recommended actions for stakeholder presentation
## Agents Used
- **analytics-analyst** — Performance data analysis, efficiency calculations, diminishing returns modeling, ROI projections, attribution assessment - **media-buyer** — Channel-level budget strategy, spend threshold expertise, reallocation sequencing, platform-specific benchmarks, auction dynamics
Source provenance
Decision snapshot
787 GitHub stars
Audit
Install and adoption review
Agent-proven evidence
Outcome reports after resolve, review, install, and one narrow run.
No agent outcome data yet. The first agent run can report success, setup needs, risk blocks, failure, or not-relevant through /api/agent/outcome.
Install
Free and open source. Review the report before installing into production agents.
Growth loop
Scenario-led draft for budget-optimizer, ready for a manual X post.
budget-optimizer: Reallocate marketing spend across channels using performance data and diminishing-returns mod... 787 stars https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=x
Listing + install path for budget-optimizer: https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=x Install: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Listing source
This listing was indexed from public sources and is not marked official until a maintainer claim is approved.
Attribution links to the public repository or creator profile. Creators can claim the listing to update ownership signals.
Claim this skillOwner claim
This Registry indexed listing is attributed to indranilbanerjee but is not marked official yet. Claim it to add a verified owner signal and make future launch, install, and audit updates easier to trust.
Creator backlink kit
Show the canonical listing, current trust and audit signals, and real Agent-Proven evidence where developers evaluate the repository.
[](https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=github&utm_source=github&utm_medium=referral&utm_campaign=creator_badge)
[](https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=github&utm_source=github&utm_medium=referral&utm_campaign=creator_badge)
[](https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer/audit)
[](https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=github&utm_source=github&utm_medium=referral&utm_campaign=creator_badge)indranilbanerjee
@indranilbanerjee
Share whether this skill looks useful for your agent workflow. Aggregated feedback improves rankings over time.
Sandbox only
Frontend Design
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Install targets
Codex install prompt
Install the "budget-optimizer" agent skill from https://github.com/indranilbanerjee/digital-marketing-pro/tree/main/skills/budget-optimizer. Read its SKILL.md or equivalent instructions first, install only the files needed for this workspace, and summarize any required setup before using it. Skill purpose: Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends shifts only; it never changes spend on any platform. Triggers on \"/digital-marketing-pro:budget-optimizer\", \"optimize my marketing budget\", \"which channels should get more spend\", \"reallocate budget based on ROAS\", \"is our channel split right\". Reads the brand profile and guidelines, runs scripts/budget-optimizer.py, and pairs with /digital-marketing-pro:budget-tracker for in-flight pacing. After the install attempt, report the result to https://www.openagentskill.com/api/agent/outcome with POST JSON {"event_id":"install_<unique-id>","skill_slug":"indranilbanerjee-budget-optimizer","task":"Install budget-optimizer","agent":"codex","outcome":"success","install_used":true}. Replace event_id with a unique value and outcome with success or failed. Report success only after the skill is installed and a minimal verification passes.Supply asset profile
SEO, content operations, lead generation, CRM, email automation, analytics, and growth workflows.
Scenario
Marketing and growth
I need my agent to research keywords, improve SEO, analyze growth channels, and prepare marketing workflows.
Agent fit
Claude Code + CLI + Codex
Codex, Claude Code, Cursor, CLI, or custom agents.
Install
Ready
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Maintenance
fresh
19d since push
Risk
Needs review
Financial research output is not financial advice; require human review before any live investment decision
GitHub quality
787
76/100 Quality · 82/100 Trust
Coverage tags
Review notes
Financial research output is not financial advice; require human review before any live investment decision · Financial research output is not financial advice; require human review before any live investment decision.
Agent adoption scorecard
These scores combine public repository metadata, OpenAgentSkill review signals, maintenance freshness, and install readiness. They are a shortlist signal, not a replacement for human review.
Quality
StrongSolid option that is likely worth shortlisting for production workflows.
Trust
Sandbox onlyUseful candidate with missing or mixed trust signals. Keep it in an isolated workspace until the outcome loop proves task fit.
Audit
Needs reviewA machine-readable review of install readiness, security metadata, maintenance, and adoption risk.
OpenAgentSkill Trust Score v5
Run only in a sandbox and compare close alternatives before using it for real work.
Stars
787 GitHub stars
Repo activity
787 stars, 132 forks
Maintenance
19d since push
License
MIT
Install
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Install safety
Agent-readable metadata
Use this block or the embedded JSON to decide whether an agent should install this skill, choose an alternative, or ask for human review first.
Suited tasks
Suited agents
Install decision
Trust and risk
Outcome loop
Install command
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizerDo not use when
Alternative
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Agent safety v2
Usable candidate, but the agent should surface permission and audit notes before installation.
Require human approval before installing into a real workspace.
medium
Skill likely fetches remote pages, APIs, repositories, or external services.
medium
Skill may read or write project files, documents, generated artifacts, or local workspace state.
Agent resolve plan
The Resolve API returns the selected skill, alternatives, safety policy, audit notes, install target, and copy-paste prompt an agent can follow without scraping this page.
Open JSON
/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium
Resolve text
/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium&format=text
Install handoff
/api/skills/indranilbanerjee-budget-optimizer/install
Agent should check
Copy prompt
Task: Use budget-optimizer in this workspace.
Resolve first: https://www.openagentskill.com/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium
Review install handoff: https://www.openagentskill.com/api/skills/indranilbanerjee-budget-optimizer/install
Install command: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Before running it, summarize audit warnings, required permissions, and the fallback skill if install is risky.Agent handoff
Use the public install endpoint to fetch the command, safety checklist, target prompts, and canonical links for this skill.
Install handoff
/api/skills/indranilbanerjee-budget-optimizer/install
LLM text format
/api/skills/indranilbanerjee-budget-optimizer/install?format=text
Find alternatives
/api/skills/search?q=budget-optimizer&limit=3
Agent prompt
Use budget-optimizer for this task. Review https://www.openagentskill.com/api/skills/indranilbanerjee-budget-optimizer/install, then install with: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizerRegistry metadata
This page exposes the same decision, trust, audit, use-case, and install signals through the Registry API, so agents can rank this skill without scraping the UI.
Manifest
/api/registry/manifest/indranilbanerjee-budget-optimizer
LLM text
/api/registry/manifest/indranilbanerjee-budget-optimizer?format=text
Install alias
/api/registry/install/indranilbanerjee-budget-optimizer
Recommend
/api/registry/recommend?task=Use%20budget-optimizer%20in%20an%20agent%20workflow&limit=3
Agent fit
Research agents
Use-case tags
Platforms
Claude Code
Audit report
A machine-readable review of install readiness, security metadata, maintenance, and adoption risk.
Agent decision cockpit
Use this as a leading candidate, then validate the README and install path in your own agent stack.
Role in stack
Primary pick
Primary fit
Research agents
Trust label
Production-ready
Install path
Command ready
Use when
Evidence
review first
Implementation path
Trust profile
Useful candidate with missing or mixed trust signals. Keep it in an isolated workspace until the outcome loop proves task fit.
GitHub adoption
INFO787 GitHub stars
Stars/forks activity
INFO787 stars, 132 forks; issue activity unavailable in current metadata
Recent maintenance
PASS19d since push
License clarity
PASSMIT
Good signals
Review before install
Recommended action
Run only in a sandbox and compare close alternatives before using it for real work.
Quality profile
Solid option that is likely worth shortlisting for production workflows.
Workflow fit
Investigate faster
I need my agent to research a topic, compare sources, and produce a concise report.
Grow distribution
I need my agent to research keywords, improve SEO, analyze growth channels, and prepare marketing workflows.
Analyze datasets
I need my agent to analyze CSV data, produce insights, and explain trends.
Workflow fit
Find, compare, and synthesize
A workflow for agents that gather sources, compare claims, summarize long material, and draft useful research briefs.
Turn skills into distribution
A workflow for turning newly indexed skills into SEO briefs, social drafts, comparison pages, and reusable publishing workflows.
Operate and verify web apps
A workflow for agents that navigate products, fill forms, take screenshots, and verify real user flows across web applications.
Alternative shortlist
Similar skills that may fit this task.
Guidance for distinctive, intentional UI design, typography, visual direction, and non-template-like product interfaces.
Design and implementation guidance for distinctive landing pages, portfolios, product demos, and purposeful redesigns.
Turn one topic into a narrated Vox-style paper-collage explainer or ad video, from script through captions.
Create original visual art, posters, PNG assets, and PDF documents through a clear design philosophy.
--- name: budget-optimizer description: "Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends shifts only; it never changes spend on any platform. Triggers on \"/digital-marketing-pro:budget-optimizer\", \"optimize my marketing budget\", \"which channels should get more spend\", \"reallocate budget based on ROAS\", \"is our channel split right\". Reads the brand profile and guidelines, runs scripts/budget-optimizer.py, and pairs with /digital-marketing-pro:budget-tracker for in-flight pacing." argument-hint: "[total-budget]" ---
# /digital-marketing-pro:budget-optimizer
## Purpose
Data-driven marketing budget optimization across channels using performance data and industry benchmarks. Analyzes current spend efficiency, models diminishing returns per channel, and produces an optimized allocation with projected ROI improvement and a phased reallocation timeline.
## Input Required
The user must provide (or will be prompted for):
- **Current budget by channel**: How spend is distributed today (e.g., paid search, paid social, SEO, email, content, display, affiliate, events, etc.) - **Performance data by channel**: Key metrics per channel — spend, revenue or conversions, CPA, ROAS, and conversion volume over the measurement period - **Total budget available**: Overall marketing budget for the optimization period (monthly, quarterly, or annual) - **Business goals**: Primary objective — maximize revenue, minimize CPA, hit a specific lead or revenue target, balance growth with efficiency - **Constraints**: Minimum spend requirements, channel mandates from leadership, seasonal considerations, contractual commitments, or platform minimums - **Measurement period**: Timeframe the performance data covers (last 30, 60, 90 days, or custom range) - **Attribution model**: How conversions are currently attributed (last-click, first-click, linear, data-driven, or unknown) - **Seasonality factors**: Upcoming seasonal peaks, promotional periods, or industry events that affect channel performance - **Historical context**: Whether performance data reflects a typical period or was influenced by one-time events (product launch, viral moment, outage)
## Process
1. **Load brand context**: Read `~/.claude-marketing/brands/_active-brand.json` for the active slug, then load `~/.claude-marketing/brands/{slug}/profile.json`. Apply brand voice, compliance rules for target markets (`skills/context-engine/compliance-rules.md`), and industry context. **Also check for guidelines** at `~/.claude-marketing/brands/{slug}/guidelines/_manifest.json` — if present, load restrictions and relevant category files. Check for custom templates at `~/.claude-marketing/brands/{slug}/templates/`. Check for agency SOPs at `~/.claude-marketing/sops/`. If no brand exists, ask: "Set up a brand first (/digital-marketing-pro:brand-setup)?" — or proceed with defaults. 2. **Run budget-optimizer.py script**: Execute `python "${CLAUDE_PLUGIN_ROOT}/scripts/budget-optimizer.py" --channels '[{"name":"google_ads","spend":10000,"roas":4.2}]' --total-budget {amount}` (`--total-budget` is required; pass channel data via `--channels` JSON or `--file`) to compute baseline efficiency metrics and generate optimization scenarios 3. **Calculate efficiency metrics per channel**: Compute ROAS, CPA, cost per lead, revenue per dollar, contribution margin, and marginal cost of acquisition for each channel 4. **Rank channels by marginal efficiency**: Order channels by incremental return per additional dollar spent, accounting for current saturation levels and historical performance trends 5. **Apply diminishing returns model**: Model how each channel's efficiency degrades as spend increases — identify the inflection point and saturation ceiling for each channel 6. **Generate optimized allocation**: Redistribute budget to maximize the stated objective while respecting all constraints and minimum viable spend thresholds 7. **Compare current vs optimized**: Build a side-by-side comparison showing spend shifts, projected metric changes, and net improvement across all KPIs 8. **Project ROI improvement**: Estimate total revenue, conversion volume, ROAS, and CPA gains from the reallocation with confidence intervals 9. **Account for minimum viable spend thresholds**: Ensure no channel drops below the minimum spend needed to generate meaningful data, maintain auction competitiveness, or fulfill contractual obligations 10. **Include testing budget**: Reserve 10-15% of total budget for experimentation — new channels, creative testing, audience expansion, or emerging platforms 11. **Flag attribution caveats**: Note where attribution model limitations may skew efficiency calculations and recommend adjustments 12. **Create reallocation timeline**: Phase budget shifts over 4-8 weeks to avoid performance disruption — gradual ramp-up and ramp-down with weekly checkpoints and rollback triggers
## Output
A structured budget optimization plan containing:
- **Current vs optimized allocation table**: Side-by-side channel budgets with dollar amounts, percentage of total, and change from current - **Projected ROI improvement**: Expected gains in revenue, conversions, ROAS, and CPA with confidence ranges - **Channel efficiency ranking**: Channels ordered by marginal return with diminishing returns curves and saturation indicators - **Reallocation recommendations**: Specific dollar shifts with clear rationale for each increase, decrease, or hold - **Scenario comparison**: Best-case, expected, and conservative projections for the optimized allocation - **Implementation timeline**: Phased reallocation schedule with weekly checkpoints, performance triggers, and rollback criteria - **Risk assessment**: Potential downsides of each shift, minimum viable spend warnings, attribution blind spots, and mitigation strategies - **Testing budget plan**: Recommended experiments with allocated budget, hypotheses, success criteria, and measurement approach - **Attribution notes**: Caveats on how the current attribution model may over- or under-credit specific channels - **Executive summary**: 1-page overview of key findings and recommended actions for stakeholder presentation
## Agents Used
- **analytics-analyst** — Performance data analysis, efficiency calculations, diminishing returns modeling, ROI projections, attribution assessment - **media-buyer** — Channel-level budget strategy, spend threshold expertise, reallocation sequencing, platform-specific benchmarks, auction dynamics
Source provenance
Decision snapshot
787 GitHub stars
Audit
Install and adoption review
Agent-proven evidence
Outcome reports after resolve, review, install, and one narrow run.
No agent outcome data yet. The first agent run can report success, setup needs, risk blocks, failure, or not-relevant through /api/agent/outcome.
Install
Free and open source. Review the report before installing into production agents.
Growth loop
Scenario-led draft for budget-optimizer, ready for a manual X post.
budget-optimizer: Reallocate marketing spend across channels using performance data and diminishing-returns mod... 787 stars https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=x
Listing + install path for budget-optimizer: https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=x Install: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Listing source
This listing was indexed from public sources and is not marked official until a maintainer claim is approved.
Attribution links to the public repository or creator profile. Creators can claim the listing to update ownership signals.
Claim this skillOwner claim
This Registry indexed listing is attributed to indranilbanerjee but is not marked official yet. Claim it to add a verified owner signal and make future launch, install, and audit updates easier to trust.
Creator backlink kit
Show the canonical listing, current trust and audit signals, and real Agent-Proven evidence where developers evaluate the repository.
[](https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=github&utm_source=github&utm_medium=referral&utm_campaign=creator_badge)
[](https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=github&utm_source=github&utm_medium=referral&utm_campaign=creator_badge)
[](https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer/audit)
[](https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=github&utm_source=github&utm_medium=referral&utm_campaign=creator_badge)indranilbanerjee
@indranilbanerjee
Share whether this skill looks useful for your agent workflow. Aggregated feedback improves rankings over time.
Sandbox only
Frontend Design
Guidance for distinctive, intentional UI design, typography, visual direction, and non-template-like product interfaces.
174.6K StarsTaste Skill: Anti-Slop Frontend
Design and implementation guidance for distinctive landing pages, portfolios, product demos, and purposeful redesigns.
84.6K StarsVox Director
Turn one topic into a narrated Vox-style paper-collage explainer or ad video, from script through captions.
1.8K StarsCanvas Design
Create original visual art, posters, PNG assets, and PDF documents through a clear design philosophy.
174.6K StarsSandbox only
Install targets
Codex install prompt
Install the "budget-optimizer" agent skill from https://github.com/indranilbanerjee/digital-marketing-pro/tree/main/skills/budget-optimizer. Read its SKILL.md or equivalent instructions first, install only the files needed for this workspace, and summarize any required setup before using it. Skill purpose: Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends shifts only; it never changes spend on any platform. Triggers on \"/digital-marketing-pro:budget-optimizer\", \"optimize my marketing budget\", \"which channels should get more spend\", \"reallocate budget based on ROAS\", \"is our channel split right\". Reads the brand profile and guidelines, runs scripts/budget-optimizer.py, and pairs with /digital-marketing-pro:budget-tracker for in-flight pacing. After the install attempt, report the result to https://www.openagentskill.com/api/agent/outcome with POST JSON {"event_id":"install_<unique-id>","skill_slug":"indranilbanerjee-budget-optimizer","task":"Install budget-optimizer","agent":"codex","outcome":"success","install_used":true}. Replace event_id with a unique value and outcome with success or failed. Report success only after the skill is installed and a minimal verification passes.Supply asset profile
SEO, content operations, lead generation, CRM, email automation, analytics, and growth workflows.
Scenario
Marketing and growth
I need my agent to research keywords, improve SEO, analyze growth channels, and prepare marketing workflows.
Agent fit
Claude Code + CLI + Codex
Codex, Claude Code, Cursor, CLI, or custom agents.
Install
Ready
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Maintenance
fresh
19d since push
Risk
Needs review
Financial research output is not financial advice; require human review before any live investment decision
GitHub quality
787
76/100 Quality · 82/100 Trust
Coverage tags
Review notes
Financial research output is not financial advice; require human review before any live investment decision · Financial research output is not financial advice; require human review before any live investment decision.
Agent adoption scorecard
These scores combine public repository metadata, OpenAgentSkill review signals, maintenance freshness, and install readiness. They are a shortlist signal, not a replacement for human review.
Quality
StrongSolid option that is likely worth shortlisting for production workflows.
Trust
Sandbox onlyUseful candidate with missing or mixed trust signals. Keep it in an isolated workspace until the outcome loop proves task fit.
Audit
Needs reviewA machine-readable review of install readiness, security metadata, maintenance, and adoption risk.
OpenAgentSkill Trust Score v5
Run only in a sandbox and compare close alternatives before using it for real work.
Stars
787 GitHub stars
Repo activity
787 stars, 132 forks
Maintenance
19d since push
License
MIT
Install
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Install safety
Agent-readable metadata
Use this block or the embedded JSON to decide whether an agent should install this skill, choose an alternative, or ask for human review first.
Suited tasks
Suited agents
Install decision
Trust and risk
Outcome loop
Install command
npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizerDo not use when
Alternative
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Alternative
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npx skills add Leonxlnx/taste-skill --skill design-taste-frontend
Alternative
1.8K Stars
npx skills add Alisa0808/vox-director --skill vox-director
Alternative
174.6K Stars
npx skills add anthropics/skills --skill canvas-design
Agent safety v2
Usable candidate, but the agent should surface permission and audit notes before installation.
Require human approval before installing into a real workspace.
medium
Skill likely fetches remote pages, APIs, repositories, or external services.
medium
Skill may read or write project files, documents, generated artifacts, or local workspace state.
Agent resolve plan
The Resolve API returns the selected skill, alternatives, safety policy, audit notes, install target, and copy-paste prompt an agent can follow without scraping this page.
Open JSON
/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium
Resolve text
/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium&format=text
Install handoff
/api/skills/indranilbanerjee-budget-optimizer/install
Agent should check
Copy prompt
Task: Use budget-optimizer in this workspace.
Resolve first: https://www.openagentskill.com/api/agent/resolve?task=Use%20budget-optimizer%20for%20an%20agent%20workflow&agent=codex&max_risk=medium
Review install handoff: https://www.openagentskill.com/api/skills/indranilbanerjee-budget-optimizer/install
Install command: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
Before running it, summarize audit warnings, required permissions, and the fallback skill if install is risky.Agent handoff
Use the public install endpoint to fetch the command, safety checklist, target prompts, and canonical links for this skill.
Install handoff
/api/skills/indranilbanerjee-budget-optimizer/install
LLM text format
/api/skills/indranilbanerjee-budget-optimizer/install?format=text
Find alternatives
/api/skills/search?q=budget-optimizer&limit=3
Agent prompt
Use budget-optimizer for this task. Review https://www.openagentskill.com/api/skills/indranilbanerjee-budget-optimizer/install, then install with: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizerRegistry metadata
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--- name: budget-optimizer description: "Reallocate marketing spend across channels using performance data and diminishing-returns modeling — produces a current-vs-optimized allocation table, projected ROI ranges with confidence intervals, a phased 4-8 week reallocation timeline, and a 10-15% testing reserve. Recommends shifts only; it never changes spend on any platform. Triggers on \"/digital-marketing-pro:budget-optimizer\", \"optimize my marketing budget\", \"which channels should get more spend\", \"reallocate budget based on ROAS\", \"is our channel split right\". Reads the brand profile and guidelines, runs scripts/budget-optimizer.py, and pairs with /digital-marketing-pro:budget-tracker for in-flight pacing." argument-hint: "[total-budget]" ---
# /digital-marketing-pro:budget-optimizer
## Purpose
Data-driven marketing budget optimization across channels using performance data and industry benchmarks. Analyzes current spend efficiency, models diminishing returns per channel, and produces an optimized allocation with projected ROI improvement and a phased reallocation timeline.
## Input Required
The user must provide (or will be prompted for):
- **Current budget by channel**: How spend is distributed today (e.g., paid search, paid social, SEO, email, content, display, affiliate, events, etc.) - **Performance data by channel**: Key metrics per channel — spend, revenue or conversions, CPA, ROAS, and conversion volume over the measurement period - **Total budget available**: Overall marketing budget for the optimization period (monthly, quarterly, or annual) - **Business goals**: Primary objective — maximize revenue, minimize CPA, hit a specific lead or revenue target, balance growth with efficiency - **Constraints**: Minimum spend requirements, channel mandates from leadership, seasonal considerations, contractual commitments, or platform minimums - **Measurement period**: Timeframe the performance data covers (last 30, 60, 90 days, or custom range) - **Attribution model**: How conversions are currently attributed (last-click, first-click, linear, data-driven, or unknown) - **Seasonality factors**: Upcoming seasonal peaks, promotional periods, or industry events that affect channel performance - **Historical context**: Whether performance data reflects a typical period or was influenced by one-time events (product launch, viral moment, outage)
## Process
1. **Load brand context**: Read `~/.claude-marketing/brands/_active-brand.json` for the active slug, then load `~/.claude-marketing/brands/{slug}/profile.json`. Apply brand voice, compliance rules for target markets (`skills/context-engine/compliance-rules.md`), and industry context. **Also check for guidelines** at `~/.claude-marketing/brands/{slug}/guidelines/_manifest.json` — if present, load restrictions and relevant category files. Check for custom templates at `~/.claude-marketing/brands/{slug}/templates/`. Check for agency SOPs at `~/.claude-marketing/sops/`. If no brand exists, ask: "Set up a brand first (/digital-marketing-pro:brand-setup)?" — or proceed with defaults. 2. **Run budget-optimizer.py script**: Execute `python "${CLAUDE_PLUGIN_ROOT}/scripts/budget-optimizer.py" --channels '[{"name":"google_ads","spend":10000,"roas":4.2}]' --total-budget {amount}` (`--total-budget` is required; pass channel data via `--channels` JSON or `--file`) to compute baseline efficiency metrics and generate optimization scenarios 3. **Calculate efficiency metrics per channel**: Compute ROAS, CPA, cost per lead, revenue per dollar, contribution margin, and marginal cost of acquisition for each channel 4. **Rank channels by marginal efficiency**: Order channels by incremental return per additional dollar spent, accounting for current saturation levels and historical performance trends 5. **Apply diminishing returns model**: Model how each channel's efficiency degrades as spend increases — identify the inflection point and saturation ceiling for each channel 6. **Generate optimized allocation**: Redistribute budget to maximize the stated objective while respecting all constraints and minimum viable spend thresholds 7. **Compare current vs optimized**: Build a side-by-side comparison showing spend shifts, projected metric changes, and net improvement across all KPIs 8. **Project ROI improvement**: Estimate total revenue, conversion volume, ROAS, and CPA gains from the reallocation with confidence intervals 9. **Account for minimum viable spend thresholds**: Ensure no channel drops below the minimum spend needed to generate meaningful data, maintain auction competitiveness, or fulfill contractual obligations 10. **Include testing budget**: Reserve 10-15% of total budget for experimentation — new channels, creative testing, audience expansion, or emerging platforms 11. **Flag attribution caveats**: Note where attribution model limitations may skew efficiency calculations and recommend adjustments 12. **Create reallocation timeline**: Phase budget shifts over 4-8 weeks to avoid performance disruption — gradual ramp-up and ramp-down with weekly checkpoints and rollback triggers
## Output
A structured budget optimization plan containing:
- **Current vs optimized allocation table**: Side-by-side channel budgets with dollar amounts, percentage of total, and change from current - **Projected ROI improvement**: Expected gains in revenue, conversions, ROAS, and CPA with confidence ranges - **Channel efficiency ranking**: Channels ordered by marginal return with diminishing returns curves and saturation indicators - **Reallocation recommendations**: Specific dollar shifts with clear rationale for each increase, decrease, or hold - **Scenario comparison**: Best-case, expected, and conservative projections for the optimized allocation - **Implementation timeline**: Phased reallocation schedule with weekly checkpoints, performance triggers, and rollback criteria - **Risk assessment**: Potential downsides of each shift, minimum viable spend warnings, attribution blind spots, and mitigation strategies - **Testing budget plan**: Recommended experiments with allocated budget, hypotheses, success criteria, and measurement approach - **Attribution notes**: Caveats on how the current attribution model may over- or under-credit specific channels - **Executive summary**: 1-page overview of key findings and recommended actions for stakeholder presentation
## Agents Used
- **analytics-analyst** — Performance data analysis, efficiency calculations, diminishing returns modeling, ROI projections, attribution assessment - **media-buyer** — Channel-level budget strategy, spend threshold expertise, reallocation sequencing, platform-specific benchmarks, auction dynamics
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budget-optimizer: Reallocate marketing spend across channels using performance data and diminishing-returns mod... 787 stars https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=x
Listing + install path for budget-optimizer: https://www.openagentskill.com/skills/indranilbanerjee-budget-optimizer?ref=x Install: npx skills add indranilbanerjee/digital-marketing-pro --skill budget-optimizer
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