A lightweight AI Study Assistant MCP server built with FastMCP, SQLite, and Google Gemini.
View on GitHub ↗A lightweight AI Study Assistant MCP Server built with Python, FastMCP, SQLite, and Google Gemini.
The project demonstrates how the Model Context Protocol (MCP) can connect an AI client with custom tools for managing study notes and accessing an AI study assistant.
- Add study notes - View saved notes - Search notes by subject, title, or content - Delete notes - Persistent storage using SQLite
- Ask study-related questions - Explain difficult concepts - Summarize topics - Generate simple explanations for revision - Powered by Google Gemini
- Python - FastMCP - Model Context Protocol (MCP) - SQLite - Google Gemini API - python-dotenv
The server currently exposes the following tools:
Tool Description ------------- -------------------------------- hello Tests the MCP server connection addnote Saves a new study note getnotes Retrieves all saved notes findnotes Searches saved notes removenote Deletes a note by title askai Sends a study question to Gemini
.env and the local SQLite database should not be committed to GitHub.
Never commit your actual API key to GitHub.
The server runs using the STDIO transport and waits for an MCP client connection.
The Inspector allows you to discover and call all tools exposed by the MCP server.
Sensitive values are stored using environment variables.
The following files should not be committed:
- PDF-based question answering - Retrieval-Augmented Generation (RAG) - Flashcard generation - Quiz generation - Study planning - Vector database integration - Remote MCP transport - Web interface
From the project README.
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Turn scattered notes, docs and transcripts into a queryable Markdown wiki — an LLM knowledge-base compiler with MCP access, no embeddings, self-hosted.
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