job-intel

REVIEW · 68
Registry indexed

Deconstructs a job description and builds interview intelligence — JD-to-evidence matching, company and product research, interviewer profiling, recruiter-vs-team discrepancy checks, and next-round question forecasting. Use when the user shares a JD or job link, names a company t

Verified installs0
Stars11
Version1.0.0
Quality57/100 · Promising
Trust68/100 · Sandbox only
Audit78/100 · Needs review

Supply asset profile

Research and knowledge work

Deep research, source comparison, literature review, RAG, knowledge search, and reports.

Browse track

Scenario

Research agents

I need my agent to research a topic, compare sources, and produce a concise report.

Agent fit

Claude Code + CLI + Codex

Codex, Claude Code, Cursor, CLI, or custom agents.

Install

Ready

npx skills add YunyueLi/greenroom --skill job-intel

Maintenance

fresh

Pushed today

Risk

Needs review

Low GitHub adoption signal

GitHub quality

11

57/100 Quality · 76/100 Trust

Coverage tags

ResearchResearch agentsagent-skill

Review notes

Low GitHub adoption signal · Quality score needs review

Agent adoption scorecard

Trust, audit, and install readiness at a glance

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

Promising
57

Useful candidate, but compare it with alternatives before adopting.

Trust

Sandbox only
68

Useful candidate with missing or mixed trust signals. Keep it in an isolated workspace until the outcome loop proves task fit.

Audit

Needs review
78

A machine-readable review of install readiness, security metadata, maintenance, and adoption risk.

OpenAgentSkill Trust Score v5

Human review before install

Run only in a sandbox and compare close alternatives before using it for real work.

CodexClaude CodeCursorOpenAgentSkill CLI

Stars

11 GitHub stars

Repo activity

11 stars, 1 forks

Maintenance

Pushed today

License

AGPL-3.0

Install

npx skills add YunyueLi/greenroom --skill job-intel

Install safety

standard package or runtime install path

Permission surface

no high-risk permission surface in public metadata

Agent outcomes

No agent outcome data yet

Docs

Usable metadata, review docs

Risk summary

Review before production

  • Low GitHub adoption signal
  • Quality score needs review
  • GitHub adoption: 11 GitHub stars
  • Stars/forks activity: 11 stars, 1 forks; issue activity unavailable in current metadata

Install readiness

Install path available

  • Install path is available
  • Repository evidence is available
  • License is declared
  • No Agent Proven outcome evidence yet

Agent-readable metadata

Machine-readable decision data for this skill.

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.

Open JSON

Suited tasks

  • Research agents workflows
  • Claude Code teams
  • builders willing to evaluate younger projects
  • Search sources

Suited agents

CodexClaude CodeCursorOpenAgentSkill CLICLI

Install decision

Command
npx skills add YunyueLi/greenroom --skill job-intel
Policy
review
Human review
yes

Trust and risk

Trust
68/100
Audit
78/100
Risk level
Needs review

Outcome loop

Endpoint
/api/agent/outcome
Event ID
resolve
Outcomes
5

Install command

npx skills add YunyueLi/greenroom --skill job-intel

Do not use when

  • teams that need a vendor-supported SLA
  • production agents without a repository review
  • Low GitHub adoption signal
  • No OpenAgentSkill engagement data yet
  • Quality score needs review

Agent safety v2

66/100 · Review before install

Reviewed with permission notesreview

Usable candidate, but the agent should surface permission and audit notes before installation.

Require human approval before installing into a real workspace.

Resolve via API

medium

Network access

Skill likely fetches remote pages, APIs, repositories, or external services.

  • Low GitHub adoption signal

Install targets

Install this skill in your agent workflow

Use the public install endpoint to fetch the command, safety checklist, target prompts, and canonical links for this skill.

skill install

OpenAgentSkill CLI

Resolve policy, run the source installer safely, and report a verified install receipt.

$ npx --yes https://github.com/Leon-Drq/openagentskill/releases/download/cli-v0.2.1/openagentskill-0.2.1.tgz install yunyueli-job-intel

Agent resolve plan

Let an agent verify fit before installing.

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 text plan

Agent should check

  • Task fit and alternatives from Resolve API.
  • Audit score, trust score, and safety policy warnings.
  • Install target compatibility for Codex, Claude Code, Cursor, or CLI.

Copy prompt

Task: Use job-intel in this workspace.
Resolve first: https://www.openagentskill.com/api/agent/resolve?task=Use%20job-intel%20for%20an%20agent%20workflow&agent=codex&max_risk=medium
Review install handoff: https://www.openagentskill.com/api/skills/yunyueli-job-intel/install
Install command: npx skills add YunyueLi/greenroom --skill job-intel
Before running it, summarize audit warnings, required permissions, and the fallback skill if install is risky.

Agent handoff

Give an agent the install path, not another directory page.

Use the public install endpoint to fetch the command, safety checklist, target prompts, and canonical links for this skill.

Open install API

Agent prompt

Use job-intel for this task. Review https://www.openagentskill.com/api/skills/yunyueli-job-intel/install, then install with: npx skills add YunyueLi/greenroom --skill job-intel

Registry metadata

Agent-readable profile for automatic skill selection.

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.

Open manifest

Agent fit

56/100

Research agents

Platforms

Claude Code

Audit report

Needs review · 78/100

A machine-readable review of install readiness, security metadata, maintenance, and adoption risk.

View audit reportView eval report

Agent decision cockpit

Needs validation for Research agents

Do a manual repository review before adding this to an agent workflow.

56
Readiness
Review
Stage

Role in stack

Needs validation

Primary fit

Research agents

Trust label

Needs manual review

Install path

Command ready

Use when

  • Research agents workflows
  • Claude Code teams
  • builders willing to evaluate younger projects

Evidence

  • recent repository activity
  • install command or GitHub repo available
  • 57/100 quality profile

review first

  • Low GitHub adoption signal
  • No OpenAgentSkill engagement data yet

Implementation path

  1. 1Install it in a sandbox agent and run one Research agents task end to end.
  2. 2Compare output quality, latency, and failure behavior against at least one alternative.
  3. 3Promote it into production only after reviewing repository permissions, license, and maintenance signals.

Trust profile

Sandbox only

Useful candidate with missing or mixed trust signals. Keep it in an isolated workspace until the outcome loop proves task fit.

68
OpenAgentSkill Trust Score

GitHub adoption

FIX

11 GitHub stars

Stars/forks activity

FIX

11 stars, 1 forks; issue activity unavailable in current metadata

Recent maintenance

PASS

Pushed today

License clarity

PASS

AGPL-3.0

Good signals

  • AI review approved
  • Install path is available
  • Repository evidence is available
  • Recently maintained repository
  • Install command has no obvious high-risk pattern
  • Outcome loop is ready but needs first real agent run

Review before install

  • Low GitHub adoption signal
  • Quality score needs review
  • GitHub adoption: 11 GitHub stars
  • Stars/forks activity: 11 stars, 1 forks; issue activity unavailable in current metadata
  • No real agent outcome reports yet
  • Human review required before unattended installation

Recommended action

Run only in a sandbox and compare close alternatives before using it for real work.

Quality profile

Promising candidate for agent workflows

Useful candidate, but compare it with alternatives before adopting.

57
GitHub stars
11
Freshness
Today
Install ready
Yes
License
AGPL-3.0
Review before install: Low GitHub adoption signal

Workflow fit

Use this skill in these scenarios

Workflow fit

Add it to a complete workflow

Alternative shortlist

Compare before you install

Similar skills that may fit this task.

Compare all

Overview

--- name: job-intel description: Deconstructs a job description and builds interview intelligence — JD-to-evidence matching, company and product research, interviewer profiling, recruiter-vs-team discrepancy checks, and next-round question forecasting. Use when the user shares a JD or job link, names a company they will interview with, asks to analyze a position (拆解 JD / 分析这个岗位 / 查一下这家公司 / 面试官是谁 / 下一轮会考什么), or after a round when the next interviewer is known. Do NOT use for writing the answer script itself (use interview-script) or post-interview review (use debrief). license: AGPL-3.0 metadata: author: Yunyue Li version: "0.1.0" ---

# job-intel · 岗位情报

把一个岗位变成一份可备战的情报文件 `jobs/<slug>/intel.md`。原则:**证据驱动**——匹配结论必须能指到候选人材料里的具体证据,查不到的就写查不到,不编。

## 前置

1. 定位工作台(找 `profile.md` + `jobs/`;没有则建议先跑 greenroom 入口 skill 初始化)。 2. 没有 `jobs/<slug>/job.md` 就先建:slug 用小写连字符(如 `acme-ai-pm`),frontmatter 含 `type: job / company / role / status / source`,正文放 JD 原文。 3. 读 `profile.md`、`story-bank.md`,作为匹配分析的证据池。

## 产出 intel.md 的六个部分

### 1. JD 逐条匹配表

JD 的每条要求一行,证据只能来自工作台材料:

| JD 要求(原文) | 我的证据 | 匹配度 | 风险/缺口 | 面试策略 | |----------------|----------|--------|-----------|----------| | (逐条抄原文) | 指向具体项目和数字;无则写「材料未见直接证据」 | ✅强 / ⚠️中 / ❌弱 | 会被追问什么 | 有证据→用哪个经历卡哪个角度;无证据→怎么正面回应缺口 |

表后给一段判断:这个岗位真正在招什么人(JD 措辞背后的核心诉求,通常 1-2 条,其余是装饰)。

### 2. 公司与产品

用 web 搜索补齐:公司近况(融资/组织变化/战略转向)、目标产品的当前状态、竞品格局、近期公开发言(创始人/业务负责人访谈是考题富矿)。每条结论带来源链接;搜不到的写「未核实」。

### 3. 面试官档案(拿到名字就做,价值极高)

- 背景:履历、做过什么方向、公开内容(博客/播客/演讲/社交账号)。 - **风格推断**:技术出身→会往机理追问;业务出身→要结果和数字;投资背景→看判断和盘子大小。 - **prefer 什么人**:从其背景推断雷区与加分项(例:面试官自己是某背景出身,慎打「我比你懂你的领域」的牌;面试官明确说过喜欢无包袱的人,就少打资历牌)。 - 给出 2-3 条具体打法调整建议,写明推断依据,标注置信度。

### 4. 双轨核对:猎头描述 vs 实际岗位

猎头/HR 描述的岗位和业务团队实际在招的岗位经常有出入(汇报线、职级、是负责人还是组员)。把两边说法并排列出,差异处标 ⚠️,列出该向谁核实什么问题。差异本身就是反问环节的好问题。

### 5. 下轮考题预测

依据:JD 关键词、面试官背景、本轮面试官透露的信息(debrief 里常有下轮剧透)、该公司公开面经(带来源)。输出 5-10 个预测题,按概率排序,每题一行注明预测依据。这份清单直接喂给 interview-script 和 mock-interview。

### 6. 渠道情报

面经、社区帖子、内部消息,逐条带来源和日期,可信度分级(一手/二手/传闻)。

## 写入约定

- frontmatter:`type: intel / job: <slug> / updated: <date>`。 - 调研中发现的硬数字(公司估值、产品数据)只是背景情报,逐条带来源;查不到的写「未核实」,不替公司编数字。 - 发现 JD 或情报与用户既有材料冲突(例:用户准备讲的方向公司刚砍掉),单独列一节「⚠️ 冲突提醒」。 - 全部写完后更新 `job.md` 的 `status` 和 `updated`。

## 触发后的最小流程

用户只给了一个 JD 没说别的 → 建 job.md → 跑六部分 → 汇报匹配表的强弱结论 + 考题预测 top3 + 建议的下一步(通常是 story-bank 或 interview-script)。

Technical details

Version
1.0.0
License
AGPL-3.0
Last updated
Aug 23, 2026
Published
Aug 23, 2026

Decision snapshot

Needs validation

56
Ready
Review
Stage

recent repository activity

Audit

Install review

Install and adoption review

78
Needs review
Security
87/100
Maintenance
100/100
Install
92/100
Open full auditView eval report

Agent-proven evidence

Agent-proven evidence

Outcome reports after resolve, review, install, and one narrow run.

0
Proven
Needs first agent runAuto-install: review firstLast: Unknown
Success rate
Recent failure
Outcomes
0
Output quality
Failed
0
Not relevant
0
Installs
0
Risk blocked
0
Setup needed
0
Production
0

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

Add to agent workflow

Free and open source. Review the report before installing into production agents.

Growth loop

Share kit

X

Scenario-led draft for job-intel, ready for a manual X post.

Curator note
job-intel: Deconstructs a job description and builds interview intelligence — JD-to-evidence matching, c...

11 stars

https://www.openagentskill.com/skills/yunyueli-job-intel?ref=x
Open X draft
Optional reply with install command
Listing + install path for job-intel:
https://www.openagentskill.com/skills/yunyueli-job-intel?ref=x

Install: npx skills add YunyueLi/greenroom --skill job-intel

Listing source

Registry indexed

Claimable

This listing was indexed from public sources and is not marked official until a maintainer claim is approved.

Creator
YunyueLi
Indexed by
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Owner claim

Claim this skill listing

This Registry indexed listing is attributed to YunyueLi 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.

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Author

Y

YunyueLi

@yunyueli

Platform fit

Health signals

GitHub stars
11
Quality score
31/100
Last GitHub push
Aug 23, 2026
Framework hints
Unknown
OpenAgentSkill views
0
Install copies
0
Outbound clicks
0

Community signal

Share whether this skill looks useful for your agent workflow. Aggregated feedback improves rankings over time.

Trust & safety

Sandbox only

68
  • GitHub adoption11 GitHub starsFIX
  • Stars/forks activity11 stars, 1 forks; issue activity unavailable in current metadataFIX
  • Recent maintenancePushed todayPASS
  • License clarityAGPL-3.0PASS
  • README/SKILL.md completenessPublic metadata needs stronger README/SKILL.md contextINFO
  • Dependency/runtime riskno major dependency risk hints in public metadataPASS