TorBox MCP Server

TorBox MCP Server

Connects AI agents to Prowlarr and TorBox for autonomous torrent searching, downloading, and media extraction via MCP.

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TorBox MCP Server

<p align="center"> <img src="https://img.shields.io/badge/Python-3.10%2B-blue" alt="Python"> <img src="https://img.shields.io/badge/Framework-FastMCP-green" alt="Framework"> <img src="https://img.shields.io/badge/License-MIT-lightgrey" alt="License"> </p>

A robust Model Context Protocol (MCP) server that connects your AI agents to Prowlarr and TorBox, allowing for fully autonomous torrent searching, downloading, and media extraction.

Features

  • Search for torrents across indexers configured in Prowlarr.
  • Send torrents and magnet links directly to TorBox for secure cloud downloading.
  • Automatically handles indexer redirects and localhost proxies (e.g., FlareSolverr).
  • Inspects downloaded TorBox file trees to extract specific media files.
  • Generates secure streaming/download links for downloaded files.
  • Built-in guardrails to reject executable files from media requests for security.

Requirements

  • Python 3.10+
  • TorBox Account (with API Key)
  • Prowlarr Instance (Local or Remote)
  • Docker (optional, for running Prowlarr/FlareSolverr via the included compose file)

Setup

  1. Clone the repository.

  2. Create a virtual environment and install dependencies:

    python -m venv venv
    source venv/bin/activate
    pip install -r requirements.txt
    
  3. Copy .env.example to .env and fill in your details:

    PROWLARR_URL=http://localhost:9696
    PROWLARR_API_KEY=your_prowlarr_api_key_here
    TORBOX_API_KEY=your_torbox_api_key_here
    
  4. Start the MCP server:

    python src/server.py
    

Usage

The server exposes tools to your AI agent natively over MCP:

  • search_indexers
  • add_to_cloud
  • inspect_file_tree
  • get_secure_link

License

MIT License

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