mem0-mcp-server

mem0-mcp-server — exposes Mem0 persistent semantic memory as an MCP HTTP server; supports add/search/read/update/delete operations and semantic search for agent memory.

mem0-mcp-server

MCP server exposing Mem0 v2 API for AI agents to store, retrieve, and search long-term memories using semantic search through the standardized MCP protocol.

Overview

Mem0-MCP Server is a self-hosted MCP (Model Context Protocol) server that bridges AI agents with persistent memory storage. It enables intelligent context retention across conversations and sessions using Mem0's AsyncMemory API.

Key Features:

  • MCP Protocol Integration - Exposes Mem0 functionality via MCP tools
  • Semantic Memory Search - Similarity-based memory retrieval with vector search
  • Multi-Tenant Isolation - User/Agent/Session scoped memory isolation
  • Flexible Transport - stdio for local agents, SSE for remote connections
  • Configuration Management - Pydantic-based validation with environment variable support

Documentation

SectionDescription
API ReferenceComplete API documentation for all modules and tools
Pattern GuidesDesign pattern documentation (Singleton, Repository, etc.)
Usage ExamplesGetting started and advanced usage guides
DeploymentDocker Compose configuration and service details
ArchitectureSystem architecture and component interactions

Quick Start

Installation

# Clone and install
git clone https://github.com/your-org/mem0-mcp-server.git
cd mem0-mcp-server
uv sync

# Set environment variables
export OPENAI_API_KEY="your-api-key"

Configuration

Create ~/.config/mem0-mcp-server/settings.json:

{
  "vector_store": {
    "provider": "redis",
    "config": {
      "redis_url": "redis://localhost:6379"
    }
  },
  "llm": {
    "provider": "openai",
    "config": {
      "model": "gpt-4o"
    }
  },
  "embedder": {
    "provider": "openai",
    "config": {
      "model": "text-embedding-3-small"
    }
  }
}

Running the Server

# SSE Transport (remote connections)
uv run python -m mcp_server.main

# stdio Transport (local AI agents)
export MCP_TRANSPORT=stdio
uv run python -m mcp_server.main

OpenCode Configuration

In ~/config/opencode/opencode.json

OpenCode Configuration

In ~/config/opencode/opencode.json

	"mcp": {
		"mem0": {
			"type": "remote",
			"enabled": true,
			"url": "http://localhost:8050/sse"
		}
    }

MCP Tools

ToolDescription
add_memoryStore information in long-term memory with semantic indexing
search_memoriesSearch memories using semantic similarity
get_memoryRetrieve specific memory by ID
update_memoryUpdate existing memory content
delete_memoryRemove memory from storage
list_memoriesList memories with filtering and pagination

Usage Example

# Add memory
result = await client.call_tool("add_memory", {
    "messages": [{"role": "user", "content": "I prefer dark mode"}],
    "user_id": "alice"
})

# Search memories
result = await client.call_tool("search_memories", {
    "query": "theme preferences",
    "filters": {"user_id": "alice"},
    "limit": 5
})

Architecture

AI Agent → FastMCP Server → MemoryManager → Mem0 AsyncMemory → Redis
              │                                  │
              ├── SafeLogger (stdout/stderr)     │
              ├── Transport (stdio/SSE)          │
              └── Config (Pydantic validation)   │

Components:

  • COMP-1: ConfigLoader - Configuration loading and validation
  • COMP-2: FastMCP Server - MCP protocol server
  • COMP-3: MemoryManager - Memory operations with multi-tenant isolation
  • COMP-4: MCP Tools - Tool definitions
  • COMP-5: SafeLogger - Output stream separation

Configuration

Parameter Precedence

Configuration values are resolved in order:

  1. Tool parameters (direct)
  2. Environment variables (with MCP_ prefix)
  3. Config file values
  4. Hardcoded defaults

Environment Variables

VariableDefaultDescription
OPENAI_API_KEY(required)OpenAI API key for LLM
MCP_TRANSPORTsseTransport type (stdio, sse)
MCP_HOST0.0.0.0Server bind address
MCP_PORT8080Server bind port

Deployment

Docker

# Using docker-compose
docker-compose up -d

# Using Makefile
make docker-up      # Start services with docker compose
make docker-down    # Stop services
make docker-logs    # Show logs

Services:

ServiceDescription
mem0-mcpMCP server exposing Mem0 API on port 8050
ollama-qwen3-embeddingOllama with qwen3-embedding:8b for vector embeddings (port 11434)
ollama-qwenOllama with qwen2.5:7b for chat completions (port 11435)

See Deployment → Docker for detailed configuration.

Kubernetes

# Using Helm chart
helm install mem0-mcp ./charts/mem0-mcp-server

Development

CommandDescription
make installInstall dependencies with uv
make lintLint code with ruff
make lint-fixAuto-fix linting issues
make typecheckType check with pyright
make testRun all tests
make test-unitRun unit tests only
make test-coverageRun tests with coverage report
make buildBuild Docker image
make runRun development server

Run multiple commands: make install && make lint && make typecheck && make test

See Makefile for all available commands including Docker management (docker-up, docker-down, docker-logs, etc.).

Project Structure

mem0-mcp/
├── src/mcp_server/
│   ├── __init__.py          # FastMCP singleton
│   ├── lifespan.py          # Resource lifecycle
│   ├── transport.py         # Transport selection
│   ├── memory/
│   │   ├── manager.py        # MemoryManager
│   │   └── lifespan.py       # AsyncMemory lifecycle
│   ├── config/
│   │   ├── settings.py       # Pydantic models
│   │   └── loader.py        # Config file loading
│   ├── tools/
│   │   ├── add_memory.py
│   │   ├── search_memories.py
│   │   └── ...
│   └── utils/
│       └── safe_logger.py   # Output separation
├── doc/
│   ├── api/                 # API reference
│   ├── patterns/            # Pattern guides
│   ├── examples/            # Usage examples
│   └── architecture/        # Architecture docs
├── tests/
├── Makefile
├── Dockerfile
└── docker-compose.yml

License

MIT License

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