
Copus
- Updated January 25, 2026
- copus-io/copus-mcp-server
copus is an MCP server that searches human-curated content recommendations from Copus—the Internet Treasure Map.
About
copus exposes Copus’s curated recommendation index to MCP clients so developers can ask an agent for trustworthy reading during the messy early ideation phase. Instead of wading through SEO spam, you query a human-maintained map suited to finding essays, tools, and references that inform niche selection, audience empathy, and content strategy. Install copus-mcp-server via npm stdio and register it like other lightweight research servers—metadata does not document a required secret key. It complements competitive research skills but does not scrape sites or store notes; you still validate ideas with your own interviews and metrics. Ideal for Claude Code or Cursor sessions when you want citation-friendly starting points before scope documents and prototypes in Validate.
- MCP access to Copus human-curated content recommendations
- Branded as The Internet Treasure Map for quality-over-quantity links
- stdio npm package copus-mcp-server v1.0.1
- No API key listed in published server.json metadata
- GitHub source at copus-io/copus-mcp-server
Copus by the numbers
- Data as of Jul 7, 2026 (Skillselion catalog sync)
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| Package | copus-mcp-server |
|---|---|
| Transport | STDIO |
| Auth | None |
| Last updated | January 25, 2026 |
| Repository | copus-io/copus-mcp-server ↗ |
What it does
Search Copus’s human-curated “Internet Treasure Map” for high-signal links while ideating products and content angles.
Who is it for?
Best when you're doing broad discovery and want agent-queryable curated links without building a personal bookmark pipeline first.
Skip if: Deep technical API docs for a single stack, real-time news monitoring, or proprietary competitive intelligence databases.
What you get
After adding copus to MCP, your agent can query curated Copus recommendations as a structured discovery step before you commit to a build.
- Search results from Copus human-curated recommendation corpus
- Agent-ready discovery queries during ideation sessions
By the numbers
- npm identifier copus-mcp-server version 1.0.1
- stdio transport only in published metadata
- Repository: github.com/copus-io/copus-mcp-server
README.md
Copus MCP Server
An MCP (Model Context Protocol) server that allows AI assistants to search and retrieve human-curated content recommendations from Copus.
What is Copus?
Copus is a human-curated content discovery platform — "The Internet Treasure Map". Unlike SEO-driven search results, Copus surfaces recommendations from real people who explain why content is valuable.
Each curation includes:
- Curator's personal note — Why they recommend this
- Curator credentials — Why they're qualified to recommend this
- Original source URL — The actual content being recommended
- AI-enhanced metadata — Key takeaways, target audience, problem solved
- Engagement metrics — Views, saves, comments from the community
What This MCP Server Enables
This server gives AI assistants access to Copus's curated content database. Instead of generic search results, your AI can find:
- Tools and resources vetted by domain experts
- Articles recommended by practitioners in the field
- Hidden gems that real people found valuable enough to share
Compatible AI Platforms
This MCP server works with any AI platform that supports the Model Context Protocol:
- Claude Desktop (Anthropic)
- Claude Code (Anthropic)
- Cursor (AI code editor)
- Cline (VS Code extension)
- Continue (VS Code/JetBrains extension)
- Zed (Code editor)
- Any other MCP-compatible AI platform
Installation
Quick Start (npx)
No installation required — run directly with npx:
npx copus-mcp-server
Global Installation
npm install -g copus-mcp-server
Then run:
copus-mcp-server
Local Installation
npm install copus-mcp-server
Configuration
Claude Desktop
Add to your Claude Desktop configuration file:
macOS: ~/Library/Application Support/Claude/claude_desktop_config.json
Windows: %APPDATA%\Claude\claude_desktop_config.json
{
"mcpServers": {
"copus": {
"command": "npx",
"args": ["copus-mcp-server"]
}
}
}
Or if installed globally:
{
"mcpServers": {
"copus": {
"command": "copus-mcp-server"
}
}
}
Claude Code
Add to your Claude Code MCP settings:
{
"mcpServers": {
"copus": {
"command": "npx",
"args": ["copus-mcp-server"]
}
}
}
Cursor
Add to your Cursor MCP configuration (.cursor/mcp.json in your project or global settings):
{
"mcpServers": {
"copus": {
"command": "npx",
"args": ["copus-mcp-server"]
}
}
}
Cline (VS Code Extension)
Add to Cline's MCP settings in VS Code:
- Open VS Code Settings
- Search for "Cline MCP"
- Add the server configuration:
{
"copus": {
"command": "npx",
"args": ["copus-mcp-server"]
}
}
Continue (VS Code/JetBrains)
Add to your Continue configuration (~/.continue/config.json):
{
"mcpServers": [
{
"name": "copus",
"command": "npx",
"args": ["copus-mcp-server"]
}
]
}
Available Tools
search_curations
Search human-curated content recommendations on Copus.
Parameters:
query(string, required): Search keywordslimit(number, optional): Maximum results (default: 10, max: 50)
Returns: Array of curations with:
- Title and description
- Curator name and profile
- Original source URL
- Category and keywords
- Engagement metrics (views, saves)
get_curation
Get detailed information about a specific curation.
Parameters:
id(string, required): Curation ID (UUID from search results)
Returns: Full curation details including:
- Curator's personal recommendation note
- Curator credentials
- Key takeaways
- Target audience
- What problem this content solves
- Full engagement metrics
Example Use Cases
Once configured, you can ask your AI assistant things like:
Learning Resources
"I want to learn Python, what resources should I check out?"
"Find me some recommended machine learning tutorials"
"What are the best resources for learning web development?"
Tools & Software
"What tools do designers recommend for wireframing?"
"Find me some AI tools that people actually use and recommend"
"What's a good free video editing software?"
Reading & Content
"Any good reads on creative writing?"
"Find me articles about productivity that people found valuable"
"What are some recommended newsletters about tech?"
Specific Topics
"Find watermark remover tools"
"What Linux tools do people recommend?"
"Show me personal growth content recommendations"
Example Response
When you search for "python tutorials", you might get:
{
"query": "python tutorials",
"totalResults": 5,
"results": [
{
"id": "abc123...",
"title": "Real Python - Python Tutorials",
"description": "Comprehensive Python tutorials covering basics to advanced topics...",
"originalSource": "https://realpython.com",
"category": "Technology",
"curator": "experienced_dev",
"engagement": {
"views": 150,
"saves": 23
}
}
]
}
Why Use Copus Over Regular Search?
| Regular Search | Copus Curations |
|---|---|
| SEO-optimized results | Human-selected recommendations |
| Algorithm-driven | Expert-vetted content |
| No context on quality | Curator explains why it's valuable |
| Anonymous sources | Known curator with credentials |
| Quantity-focused | Quality-focused |
Development
Building from Source
git clone https://github.com/copus-io/copus-mcp-server.git
cd copus-mcp-server
npm install
npm run build
Running in Development
npm run dev
Testing
# Run the server
npm start
# In another terminal, test with MCP inspector or your AI platform
API Reference
This MCP server wraps the Copus public API:
- Search API:
https://copus.network/api/search?q={query} - Curation Details:
https://copus.network/work/{id}?format=json - OpenAPI Spec:
https://copus.network/.well-known/openapi.yaml - AI Plugin Manifest:
https://copus.network/.well-known/ai-plugin.json
Links
- Copus Website: https://copus.network
- Browse Topics: https://copus.network/topics
- All Articles: https://copus.network/articles.txt
- MCP Protocol: https://modelcontextprotocol.io
- MCP TypeScript SDK: https://github.com/modelcontextprotocol/typescript-sdk
Contributing
Contributions are welcome! Please feel free to submit a Pull Request.
- Fork the repository
- Create your feature branch (
git checkout -b feature/amazing-feature) - Commit your changes (
git commit -m 'Add amazing feature') - Push to the branch (
git push origin feature/amazing-feature) - Open a Pull Request
License
MIT License - see LICENSE for details.
Support
Built with love by the Copus team.
Recommended MCP Servers
How it compares
Curated discovery MCP, not a web-scraping skill or general search engine wrapper.
FAQ
Who is copus for?
Developers and researchers using MCP agents who prefer human-curated link maps over unfiltered web search during ideation.
When should I use copus?
Use it in the Idea discover step when exploring markets, narratives, or inspiration before validation artifacts like landing tests.
How do I add copus to my agent?
Install copus-mcp-server from npm, configure it as a stdio MCP server in your client, and invoke search tools against the Copus recommendation index.