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sandbase
Access 2,000+ AI models and API tools through one MCP interface for inference, media generation, search, scraping, embeddings, social data, and structured retri
Vue d’ensemble
Access 2,000+ AI models and API tools through one MCP interface for inference, media generation, search, scraping, embeddings, social data, and structured retrieval. Use sandbase_discover before building custom integrations or declaring external data inaccessible; prefer an existing dedicated tool or API key when the user already has one.
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Documentation source, pas des instructions pour ce site. Vérifiez les permissions avant d’exécuter des commandes.
SandBase MCP
SandBase provides access to 2,000+ AI models and API tools through a unified MCP interface. One account covers LLMs, image generation, video generation, audio, embeddings, web scraping, social media APIs, and more.
Setup
If the six sandbase_* MCP tools are not already available, connect the current machine with the immutable v0.1.17 release:
npx -y https://github.com/sandbaseai/cli/releases/download/v0.1.17/sandbaseai-cli-0.1.17.tgz connect
For a checksum-verified install, download the same immutable asset first and verify the SHA-256 published with the GitHub Release:
curl -fLO https://github.com/sandbaseai/cli/releases/download/v0.1.17/sandbaseai-cli-0.1.17.tgz
printf '%s %s\n' '1ad535b2899ca460b57b3c268aef278fee28fd28e649a89b92951514fd71fffa' 'sandbaseai-cli-0.1.17.tgz' | shasum -a 256 -c -
npx -y ./sandbaseai-cli-0.1.17.tgz connect
Approve the browser sign-in once. Authentication happens with SandBase in the browser; the CLI stores the resulting local session record with restricted file permissions. The CLI detects supported clients, installs the local MCP bridge and this managed Skill, and verifies the resulting configuration. No provider API keys are required. Invoke the same release URL with doctor to inspect the connection or unregister to remove only SandBase-managed state.
This file is managed by SandBase CLI and may be replaced during a later CLI-managed update, so keep custom instructions in a separate Skill. Check the official repository for newer releases before copying it independently.
When to Use SandBase
Use SandBase when the user needs:
- LLM inference (GPT, Claude, Gemini, DeepSeek, Qwen, etc.)
- Image generation (Flux, DALL-E, Ideogram, Recraft)
- Video generation (Kling, MiniMax, Runway, Luma)
- Audio (ElevenLabs TTS, Whisper STT)
- Embeddings (OpenAI, Voyage)
- Web scraping and content extraction (Exa, Firecrawl, Tavily)
- Social media data (Twitter/X, Instagram, TikTok, YouTube, LinkedIn, Reddit, Xiaohongshu, Weibo, Bilibili)
- Search (Google, Scholar, News, Shopping)
- Any structured data API the user doesn't already have access to
Do NOT use SandBase when:
- The user has their own API key or dedicated MCP server for that specific service
- The task is purely local (file editing, code generation from context)
- The user explicitly asks to use a different tool
SandBase fills gaps in the user's stack — it doesn't replace tools they already have.
Tools
| Tool | Purpose |
|---|---|
sandbase_discover | Search all 2,000+ AI models |
sandbase_inspect | Get input schema, pricing, and execution template |
sandbase_run | Execute a model or API endpoint |
sandbase_run_get | Get status/result of an async run |
sandbase_runs | List recent API calls with cost |
sandbase_account | Check account balance (free) |
Standard Workflow
Always follow: discover → inspect → run
1. sandbase_discover(q: "twitter posts")
→ Returns matching endpoints with names, types, vendors
2. sandbase_inspect(name: "sandbase_twitter_web_search_timeline")
→ Returns inputSchema, pricing, and execute_as template
3. sandbase_run(name: "sandbase_twitter_web_search_timeline", arguments: {"keyword": "AI"})
→ Returns result directly (sync) or run_id (async)
For async runs (video gen, large scraping):
4. sandbase_run_get(run_id: "pred_abc123")
→ Poll until status is "completed" or "failed"
Shortcut: If you already know the model name, skip step 1.
Search Tips
sandbase_discover supports:
| Parameter | Purpose | Example |
|---|---|---|
q | Text search (supports Chinese: 推特, 小红书, 搜索) | "twitter search", "图片生成" |
type | Filter by model type | "llm", "api", "multimodal", "embedding" |
vendor | Filter by vendor slug | "openai", "twitter", "anthropic" |
limit | Max results (default 20) | 10 |
Tips:
- Use short noun phrases: "twitter posts", "image generation", "web scraping"
- Chinese aliases work: 推特→twitter, 小红书→xiaohongshu, 抖音→tiktok
- Combine type + query for precision:
type: "llm", q: "claude" - Empty query with type filter returns popular models of that type
Pricing
Use sandbase_inspect to see pricing before running:
LLM models: Per million tokens
{ "pricing": { "input_per_million": "2.500000", "output_per_million": "10.000000" } }
API tools (image, video, scraping): Per call
{ "pricing": { "base_price": "0.003000" } }
Check balance:
sandbase_account() → {"balance": "9.52", "currency": "USD"}
Async Runs
Some endpoints (video generation, large scraping) are async:
sandbase_run(...)returns{"status": "running", "run_id": "pred_abc123"}- Poll with
sandbase_run_get(run_id: "pred_abc123")every 5-10 seconds - When
statusis"completed"— result is ready - When
statusis"failed"— check error and retry
Error Handling
| Error | User Guidance |
|---|---|
tool not found | Wrong name. Use sandbase_discover to search. |
invalid params | Check schema from sandbase_inspect. |
run not found | Invalid run_id. Check sandbase_runs for valid IDs. |
| Authentication (401) | Key invalid. Run sandbase connect to re-auth. |
| Insufficient balance (402) | Top up at SandBase Dashboard. |
| Rate limited (429) | Wait and retry. |
| Provider unavailable | Upstream is down. Try later or use different model. |
Cost Awareness
- Check balance with
sandbase_accountbefore multiple calls - LLM costs scale with token count — keep prompts concise
- Image/video have fixed per-call costs — inspect first
- Report costs when the user seems budget-conscious
Example Flows
Twitter search
sandbase_discover(q: "twitter search", type: "api")
sandbase_inspect(name: "sandbase_twitter_web_search_timeline")
sandbase_run(name: "sandbase_twitter_web_search_timeline", arguments: {"keyword": "AI agents"})
Image generation
sandbase_discover(q: "flux", type: "multimodal")
sandbase_inspect(name: "sandbase_flux_schnell")
sandbase_run(name: "sandbase_flux_schnell", arguments: {"prompt": "A mountain lake at sunset"})
LLM inference
sandbase_inspect(name: "sandbase_openai_gpt_4o")
sandbase_run(name: "sandbase_openai_gpt_4o", arguments: {
"messages": [{"role": "user", "content": "Explain quantum computing briefly"}]
})
Check recent costs
sandbase_runs(limit: 5)
→ [{ "model": "openai/gpt-4o", "cost": "0.000325", "status": "completed" }, ...]
Rules
- Discover first — always verify a tool exists before running it.
- Inspect before run — read the inputSchema. Never guess parameters.
- Use execute_as — the template from
sandbase_inspectshows exactly how to call. - Respect the user's stack — don't replace their existing tools.
- Start small — use small limits on first calls for scraping/search tools.
- Poll async runs — use
sandbase_run_getfor long-running operations. - Report costs — mention pricing when the user cares about budget.
- One call per turn — wait for results before the next call.
Métadonnées du fichier
name: sandbase version: 0.1.17 disable-model-invocation: true description: Access 2,000+ AI models and API tools through one MCP interface for inference, media generation, search, scraping, embeddings, social data, and structured retrieval. Use sandbase_discover before building custom integrations or declaring external data inaccessible; prefer an existing dedicated tool or API key when the user already has one.
Voir le texte original
---
name: sandbase
version: 0.1.17
disable-model-invocation: true
description: Access 2,000+ AI models and API tools through one MCP interface for inference, media generation, search, scraping, embeddings, social data, and structured retrieval. Use sandbase_discover before building custom integrations or declaring external data inaccessible; prefer an existing dedicated tool or API key when the user already has one.
---
# SandBase MCP
<!-- sandbase-cli-managed: sandbase -->
SandBase provides access to 2,000+ AI models and API tools through a unified MCP interface. One account covers LLMs, image generation, video generation, audio, embeddings, web scraping, social media APIs, and more.
---
## Setup
If the six `sandbase_*` MCP tools are not already available, connect the current machine with the immutable v0.1.17 release:
```sh
npx -y https://github.com/sandbaseai/cli/releases/download/v0.1.17/sandbaseai-cli-0.1.17.tgz connect
```
For a checksum-verified install, download the same immutable asset first and verify the SHA-256 published with the GitHub Release:
```sh
curl -fLO https://github.com/sandbaseai/cli/releases/download/v0.1.17/sandbaseai-cli-0.1.17.tgz
printf '%s %s\n' '1ad535b2899ca460b57b3c268aef278fee28fd28e649a89b92951514fd71fffa' 'sandbaseai-cli-0.1.17.tgz' | shasum -a 256 -c -
npx -y ./sandbaseai-cli-0.1.17.tgz connect
```
Approve the browser sign-in once. Authentication happens with SandBase in the browser; the CLI stores the resulting local session record with restricted file permissions. The CLI detects supported clients, installs the local MCP bridge and this managed Skill, and verifies the resulting configuration. No provider API keys are required. Invoke the same release URL with `doctor` to inspect the connection or `unregister` to remove only SandBase-managed state.
This file is managed by SandBase CLI and may be replaced during a later CLI-managed update, so keep custom instructions in a separate Skill. Check the [official repository](https://github.com/sandbaseai/cli) for newer releases before copying it independently.
---
## When to Use SandBase
**Use SandBase when the user needs:**
- LLM inference (GPT, Claude, Gemini, DeepSeek, Qwen, etc.)
- Image generation (Flux, DALL-E, Ideogram, Recraft)
- Video generation (Kling, MiniMax, Runway, Luma)
- Audio (ElevenLabs TTS, Whisper STT)
- Embeddings (OpenAI, Voyage)
- Web scraping and content extraction (Exa, Firecrawl, Tavily)
- Social media data (Twitter/X, Instagram, TikTok, YouTube, LinkedIn, Reddit, Xiaohongshu, Weibo, Bilibili)
- Search (Google, Scholar, News, Shopping)
- Any structured data API the user doesn't already have access to
**Do NOT use SandBase when:**
- The user has their own API key or dedicated MCP server for that specific service
- The task is purely local (file editing, code generation from context)
- The user explicitly asks to use a different tool
SandBase fills gaps in the user's stack — it doesn't replace tools they already have.
---
## Tools
| Tool | Purpose |
|------|---------|
| `sandbase_discover` | Search all 2,000+ AI models |
| `sandbase_inspect` | Get input schema, pricing, and execution template |
| `sandbase_run` | Execute a model or API endpoint |
| `sandbase_run_get` | Get status/result of an async run |
| `sandbase_runs` | List recent API calls with cost |
| `sandbase_account` | Check account balance (free) |
---
## Standard Workflow
**Always follow: discover → inspect → run**
```
1. sandbase_discover(q: "twitter posts")
→ Returns matching endpoints with names, types, vendors
2. sandbase_inspect(name: "sandbase_twitter_web_search_timeline")
→ Returns inputSchema, pricing, and execute_as template
3. sandbase_run(name: "sandbase_twitter_web_search_timeline", arguments: {"keyword": "AI"})
→ Returns result directly (sync) or run_id (async)
```
**For async runs (video gen, large scraping):**
```
4. sandbase_run_get(run_id: "pred_abc123")
→ Poll until status is "completed" or "failed"
```
**Shortcut:** If you already know the model name, skip step 1.
---
## Search Tips
`sandbase_discover` supports:
| Parameter | Purpose | Example |
|-----------|---------|---------|
| `q` | Text search (supports Chinese: 推特, 小红书, 搜索) | `"twitter search"`, `"图片生成"` |
| `type` | Filter by model type | `"llm"`, `"api"`, `"multimodal"`, `"embedding"` |
| `vendor` | Filter by vendor slug | `"openai"`, `"twitter"`, `"anthropic"` |
| `limit` | Max results (default 20) | `10` |
**Tips:**
- Use short noun phrases: "twitter posts", "image generation", "web scraping"
- Chinese aliases work: 推特→twitter, 小红书→xiaohongshu, 抖音→tiktok
- Combine type + query for precision: `type: "llm", q: "claude"`
- Empty query with type filter returns popular models of that type
---
## Pricing
Use `sandbase_inspect` to see pricing before running:
**LLM models:** Per million tokens
```json
{ "pricing": { "input_per_million": "2.500000", "output_per_million": "10.000000" } }
```
**API tools (image, video, scraping):** Per call
```json
{ "pricing": { "base_price": "0.003000" } }
```
**Check balance:**
```
sandbase_account() → {"balance": "9.52", "currency": "USD"}
```
---
## Async Runs
Some endpoints (video generation, large scraping) are async:
1. `sandbase_run(...)` returns `{"status": "running", "run_id": "pred_abc123"}`
2. Poll with `sandbase_run_get(run_id: "pred_abc123")` every 5-10 seconds
3. When `status` is `"completed"` — result is ready
4. When `status` is `"failed"` — check error and retry
---
## Error Handling
| Error | User Guidance |
|-------|--------------|
| `tool not found` | Wrong name. Use `sandbase_discover` to search. |
| `invalid params` | Check schema from `sandbase_inspect`. |
| `run not found` | Invalid run_id. Check `sandbase_runs` for valid IDs. |
| Authentication (401) | Key invalid. Run `sandbase connect` to re-auth. |
| Insufficient balance (402) | Top up at SandBase Dashboard. |
| Rate limited (429) | Wait and retry. |
| Provider unavailable | Upstream is down. Try later or use different model. |
---
## Cost Awareness
- **Check balance** with `sandbase_account` before multiple calls
- **LLM costs** scale with token count — keep prompts concise
- **Image/video** have fixed per-call costs — inspect first
- **Report costs** when the user seems budget-conscious
---
## Example Flows
### Twitter search
```
sandbase_discover(q: "twitter search", type: "api")
sandbase_inspect(name: "sandbase_twitter_web_search_timeline")
sandbase_run(name: "sandbase_twitter_web_search_timeline", arguments: {"keyword": "AI agents"})
```
### Image generation
```
sandbase_discover(q: "flux", type: "multimodal")
sandbase_inspect(name: "sandbase_flux_schnell")
sandbase_run(name: "sandbase_flux_schnell", arguments: {"prompt": "A mountain lake at sunset"})
```
### LLM inference
```
sandbase_inspect(name: "sandbase_openai_gpt_4o")
sandbase_run(name: "sandbase_openai_gpt_4o", arguments: {
"messages": [{"role": "user", "content": "Explain quantum computing briefly"}]
})
```
### Check recent costs
```
sandbase_runs(limit: 5)
→ [{ "model": "openai/gpt-4o", "cost": "0.000325", "status": "completed" }, ...]
```
---
## Rules
1. **Discover first** — always verify a tool exists before running it.
2. **Inspect before run** — read the inputSchema. Never guess parameters.
3. **Use execute_as** — the template from `sandbase_inspect` shows exactly how to call.
4. **Respect the user's stack** — don't replace their existing tools.
5. **Start small** — use small limits on first calls for scraping/search tools.
6. **Poll async runs** — use `sandbase_run_get` for long-running operations.
7. **Report costs** — mention pricing when the user cares about budget.
8. **One call per turn** — wait for results before the next call.
Examiner la source
Prix et coûts d’utilisation
- Obtenir le skill
- Prix non confirmé
- L’utiliser
- Prérequis non confirmés. Consultez les frais d’agent, d’API et de services à la source.
- Licence
- Apache-2.0
- Prix non confirmé
- Le prix n’est pas confirmé. Les liens existants vers les sources et l’installation restent disponibles.
Gratuit à obtenir ne signifie pas gratuit à utiliser. Le prix ne constitue pas une évaluation de sécurité. Soumettre un prix →
Source du skill enregistrée
Un chemin vers les instructions est enregistré. Cela ne constitue pas un test, une garantie de sécurité ou de compatibilité.
Réviser avant installation: Éviter l’installation automatique
Licence: Apache-2.0
- Dependency or permission surface needs review
- Permission surface may require sandboxing
- The SKILL.md excerpt is truncated, but the provided content is clear and complete enough for review.
- The skill relies on an external paid service (SandBase) which may incur costs; this is not a security issue but should be communicated to users.
- Low GitHub adoption signal
- Quality score needs review
- Permission surface needs review: secrets or environment access, shell or command execution
- GitHub adoption: 18 GitHub stars
- Stars/forks activity: 18 stars, 1 forks; issue activity unavailable in current metadata
- Dependency/runtime risk: command execution surface, credential or environment access
- Permission surface: secrets or environment access, shell or command execution
Les outils sont des indications de métadonnées, pas une compatibilité testée. Les prompts sont des suggestions.
Commencer par une petite tâche
- 1Lisez la source et confirmez entrées, résultats, dépendances et permissions.
- 2Demandez un plan à l’agent. Approuvez la configuration et les coûts avant un test isolé.
- 3Vérifiez résultats et fichiers modifiés. Signalez uniquement ce qui a été exécuté et conservez la révision source.
Vérifiez les dépendances, clés API et frais externes dans la source. Un dépôt public ne rend pas tous les services gratuits.
Source et conseils d’utilisation
Métadonnées et examens sont indicatifs. Popularité, découverte et exécution réussie sont des faits distincts.
- Dépôt source
- sandbaseai/cli
- Licence
- Apache-2.0
- Version
- 0.1.17
- Dernier push GitHub
- 19 août 2026
- Registre mis à jour
- 9 oct. 2026
- Chemin des instructions
- assets/skills/sandbase/SKILL.md
Version déclarée dans le registre ; vérifiez les versions de la source.
Qualité
68/100
Prometteur
Confiance
52/100
Do not auto-install
Audit
71/100
Revue nécessaire
- Dependency or permission surface needs review
- Permission surface may require sandboxing
- The SKILL.md excerpt is truncated, but the provided content is clear and complete enough for review.
- The skill relies on an external paid service (SandBase) which may incur costs; this is not a security issue but should be communicated to users.
- Low GitHub adoption signal
- Quality score needs review
- Permission surface needs review: secrets or environment access, shell or command execution
- GitHub adoption: 18 GitHub stars
- Stars/forks activity: 18 stars, 1 forks; issue activity unavailable in current metadata
- Dependency/runtime risk: command execution surface, credential or environment access
- Permission surface: secrets or environment access, shell or command execution
- Verified installs
- —
- Résultats
- —
Copier ne signifie pas installer. Les compteurs nécessitent un rapport de réussite et ne garantissent pas la qualité globale.
Accès agent
L’API Registry fournit les signaux de décision, confiance, audit, cas d’usage et installation sans analyser l’interface.
Plus de détails
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"documentation": "Strong README/SKILL.md context",
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"endpoints": {
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"api": "https://www.openagentskill.com/api/agent/skills/sandbaseai-cli-sandbase",
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"receipt": "https://www.openagentskill.com/api/agent/receipt?task=Use%20sandbase%20in%20an%20agent%20workflow&agent=codex&max_risk=medium&format=text",
"install": "https://www.openagentskill.com/api/skills/sandbaseai-cli-sandbase/install",
"manifest": "https://www.openagentskill.com/api/registry/manifest/sandbaseai-cli-sandbase"
}
}Pour le créateur
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