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    Sample Mcp Server S3

    67 stars
    Python
    Updated Oct 30, 2025

    Table of Contents

    • Features
    • Resources
    • Tools
    • Configuration
    • Setting up AWS Credentials
    • Usage with Claude Desktop
    • Claude Desktop
    • Development
    • Building and Publishing
    • Debugging
    • Security
    • License

    Table of Contents

    • Features
    • Resources
    • Tools
    • Configuration
    • Setting up AWS Credentials
    • Usage with Claude Desktop
    • Claude Desktop
    • Development
    • Building and Publishing
    • Debugging
    • Security
    • License

    Documentation

    Sample S3 Model Context Protocol Server

    An MCP server implementation for retrieving data such as PDF's from S3.

    Features

    Resources

    Expose AWS S3 Data through Resources. (think of these sort of like GET endpoints; they are used to load information into the LLM's context). Currently only PDF documents supported and limited to 1000 objects.

    Tools

    • ListBuckets
    • Returns a list of all buckets owned by the authenticated sender of the request
    • ListObjectsV2
    • Returns some or all (up to 1,000) of the objects in a bucket with each request
    • GetObject
    • Retrieves an object from Amazon S3. In the GetObject request, specify the full key name for the object. General purpose buckets - Both the virtual-hosted-style requests and the path-style requests are supported

    Configuration

    Setting up AWS Credentials

    1. Obtain AWS access key ID, secret access key, and region from the AWS Management Console.

    2. Ensure these credentials have appropriate permissions for AWS S3.

    Usage with Claude Desktop

    Claude Desktop

    On MacOS: ~/Library/Application\ Support/Claude/claude_desktop_config.json

    On Windows: %APPDATA%/Claude/claude_desktop_config.json

    Development/Unpublished Servers Configuration

    json
    {
      "mcpServers": {
        "s3-mcp-server": {
          "command": "uv",
          "args": [
            "--directory",
            "/Users/user/generative_ai/model_context_protocol/s3-mcp-server",
            "run",
            "s3-mcp-server"
          ]
        }
      }
    }

    Published Servers Configuration

    json
    {
      "mcpServers": {
        "s3-mcp-server": {
          "command": "uvx",
          "args": [
            "s3-mcp-server"
          ]
        }
      }
    }

    Development

    Building and Publishing

    To prepare the package for distribution:

    1. Sync dependencies and update lockfile:

    bash
    uv sync

    2. Build package distributions:

    bash
    uv build

    This will create source and wheel distributions in the dist/ directory.

    3. Publish to PyPI:

    bash
    uv publish

    Note: You'll need to set PyPI credentials via environment variables or command flags:

    • Token: --token or UV_PUBLISH_TOKEN
    • Or username/password: --username/UV_PUBLISH_USERNAME and --password/UV_PUBLISH_PASSWORD

    Debugging

    Since MCP servers run over stdio, debugging can be challenging. For the best debugging

    experience, we strongly recommend using the MCP Inspector.

    You can launch the MCP Inspector via [npm](https://docs.npmjs.com/downloading-and-installing-node-js-and-npm) with this command:

    bash
    npx @modelcontextprotocol/inspector uv --directory /Users/user/generative_ai/model_context_protocol/s3-mcp-server run s3-mcp-server

    Upon launching, the Inspector will display a URL that you can access in your browser to begin debugging.

    Security

    See CONTRIBUTING for more information.

    License

    This library is licensed under the MIT-0 License. See the LICENSE file.

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