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What is an MCP Server?

An MCP (Model Context Protocol) server acts as a bridge, allowing AI models to access and interact with external data sources and tools. In the context of UBOS, it enables AI Agents to connect with GitHub Enterprise data.

How does the MCP Server improve GitHub Enterprise management?

The MCP Server allows AI agents to query and manage GitHub Enterprise data, such as license usage, user details, and organization memberships, leading to enhanced efficiency and security.

What are the prerequisites for using the MCP Server?

You need Python 3.9+, a GitHub PAT with read:enterprise / license scopes, and a GitHub Enterprise Cloud tenant.

How do I configure the MCP Server?

You need to clone the repository, create a virtual environment, install the requirements, and then configure the .env file with your GitHub token and enterprise URL.

Can I deploy the MCP Server on Kubernetes?

Yes, the MCP Server is Kubernetes-ready and can be deployed on any K8s cluster for scalability and resilience.

What AI Agents can I use with the MCP Server?

You can use AI Agents like Claude and ChatGPT with the MCP Server.

What are the security considerations for using the MCP Server?

You should store your GitHub token securely, use appropriate scopes for your GitHub token, and implement network policies in Kubernetes deployments.

How can UBOS help me further integrate AI into my business?

UBOS offers a full-stack AI Agent development platform to orchestrate AI Agents, connect them with enterprise data, build custom AI Agents, and develop Multi-Agent Systems.

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