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FedericaZuccarello Mcp Server

mcp-federicazuccarello-mcp-server · by FedericaZuccarello

Playing around with MCP server, agents and LangChain

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Install

$ agentstack add mcp-federicazuccarello-mcp-server

✓ scanned · ✓ verified, works with Claude Code, Cursor, and more.

Security review

✓ Passed

No issues found. Passed automated security review. · v0.1.0 How review works →

  • Prompt-injection patterns
  • Secret / credential exfiltration
  • Dangerous shell & filesystem operations
  • Untrusted network calls
  • Known-malicious package signatures

What it can access

  • Network access No
  • Filesystem access No
  • Shell / process execution No
  • Environment & secrets Used
  • Dynamic code execution No

From automated source analysis of v0.1.0. “Used” means the capability is present in the source — more access means more to trust, not that it’s unsafe.

View the full security report →

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Passed review? Show it. Paste this badge into your README, it links to the public security report.

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Reliability & compatibility

Security review passed
0 installs to date
no reviews yet
3mo ago

Declared compatibility

Claude CodeClaude DesktopCursorWindsurf

Compatibility is declared by the source manifest. End-to-end runtime verification is coming, see below.

Preview Execution monitoring

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About

MCP server · TypeScript · LangChain

[](https://www.typescriptlang.org/) [](https://nodejs.org/) [](LICENSE)

Minimal Model Context Protocol server in TypeScript with a LangChain / OpenAI assistant behind an MCP entrypoint (assist), plus thin tools for deterministic JSON (getWeather, addNumbers) and a TTS helper (textToSpeech). Exposes MCP over stdio (stdin/stdout JSON-RPC)—not Express/HTTP—for hosts like Cursor, Claude Desktop, or custom clients.

Why this repo

Demonstrates integrating external LLM tooling with a narrow MCP surface:

  • MCP stdio transport + Zod-typed tool inputs
  • Server-side routing: one NL entrypoint (assist) runs an internal agent; no extra “routing” tools on the wire
  • LangChain createAgent with small domain tools (weather via Open-Meteo, math helpers)
  • TypeScript strict mode, tsc build to dist/, demo scripts via tsx

Quick start

git clone 
cd mcp-server
nvm use   # optional; reads .nvmrc (Node 20)
npm install
cp .env.example .env   # set OPENAI_API_KEY for assist
npm run build
npm start              # MCP on stdio (after pre-build)

Try the bundled demos (they build first, then spawn dist/mcp/index.js):

npm run chat -- "What is the weather in London? One short sentence."
npm run mcp:demo-client -- assist '{"message":"What is the weather in London? One short sentence."}'

Architecture

flowchart LR
  Host[MCP host] -->|stdio JSON-RPC| MCP[MCP server]
  MCP --> assist["tool: assist"]
  MCP --> getWeather["tool: getWeather"]
  MCP --> addNumbers["tool: addNumbers"]
  MCP --> textToSpeech["tool: textToSpeech (optional)"]
  assist --> Agent[LangChain agent + OpenAI]
  Agent --> W[Weather tool]
  Agent --> M[Math tools]
  getWeather --> API[Open-Meteo / geocoding]

Design choices

Hosts should send natural language through assist so prompts, tool boundaries, and model config stay on your machine. Structured integrations can call getWeather or addNumbers directly when inputs are already known (no NL).

| MCP tool | Purpose | |------------|---------| | assist | Default. { message } → runs the internal LangChain assistant (tools live in-process). | | getWeather | Raw JSON for a known city (Open-Meteo, no API key). | | addNumbers | Raw JSON sum of two numbers. | | textToSpeech | Text → MP3 audio (MCP audio + metadata). |

OPENAI_API_KEY must be visible to the MCP server process for assist (e.g. .env loaded from dotenv, or env vars in your host’s MCP config—never commit secrets).

Layout

| Path | Role | |------|------| | src/mcp/index.ts | MCP server bootstrap, stdio transport. | | src/mcp/tools/assist.ts | NL → runAgent(...). | | src/mcp/tools/weather.ts, math.ts | Thin MCP tools. | | src/agents/ | Registry, run.ts, LangChain tools, general agent definition. | | src/services/ | HTTP/domain helpers (weather, math). | | scripts/llm-chat.ts | Example host (LangChain + MultiServerMCPClient). | | scripts/mcp-stdio-client-demo.ts | Raw MCP SDK client demo. |

npm run build emits dist/ (listed in .gitignore).

Commands

| Script | What it does (demo/testing) | |--------|--------------| | npm run build | Compile with tscdist/. | | npm test | Same as build (CI smoke check). | | npm start | Build (prestart), then node dist/mcp/index.js (starts the MCP server). | | npm run dev | tsx watch src/mcp/index.ts — no prior build. | | npm run chat -- "…" | Demo host running the whole agent system via MCP assist (recommended). | | npm run mcp:demo-client | Demo/testing MCP client. Call tools individually (e.g. ... -- getWeather '{"city":"London"}'). | | npm run speak -- "…" | ElevenLabs TTS smoke test (needs ELEVENLABS_API_KEY). Uses ffplay when on PATH; otherwise opens a temp MP3 in your default player. |

Examples: run everything vs tools only

Run the whole agent system (natural language → assist → internal LangChain agent → final text):

npm run chat -- "What is the weather in London? How is 34+7?"

Same flow, but calling assist explicitly with an object payload:

npm run mcp:demo-client -- assist '{"message":"What is the weather in London? How is 34+7?"}'

Testing individual MCP tools (not required for the full agent):

npm run mcp:demo-client -- getWeather '{"city":"London"}'
npm run mcp:demo-client -- addNumbers '{"a":34,"b":7}'
npm run mcp:demo-client -- textToSpeech '{"text":"Hello from the server"}'

Cursor & Inspector

After npm run build, point the host at node /absolute/path/to/dist/mcp/index.js.

MCP Inspector: npx -y @modelcontextprotocol/inspector node dist/mcp/index.js from the repo root. Pass assist secrets with -e OPENAI_API_KEY=$OPENAI_API_KEY where needed.

FFmpeg and ffplay (optional)

The npm run speak script can play MP3 in the terminal using ffplay, which ships with FFmpeg. If ffplay is not on your PATH, the script still works by saving a short MP3 under your temp folder and opening it with the OS default app; install FFmpeg when you want in-terminal playback without that fallback.

Windows

  1. winget (built into Windows 10/11):

``powershell winget install --id Gyan.FFmpeg --source winget --accept-package-agreements --accept-source-agreements ``

  1. Close and reopen your terminal (or Cursor’s integrated terminal) so the updated PATH includes the FFmpeg bin directory.
  1. Confirm ffplay is visible:

``powershell ffplay -version ``

If ffplay is still not found, add the folder that contains ffplay.exe manually: Settings → System → About → Advanced system settings → Environment Variables → Path → Edit → New (typical install paths look like C:\ffmpeg\bin or under %LOCALAPPDATA%\Microsoft\WinGet\Packages\…).

Manual download: gyan.dev FFmpeg builds (full or essentials build), unzip, then add the bin folder to PATH as above.

macOS

brew install ffmpeg
ffplay -version

Linux (Debian / Ubuntu example)

sudo apt update && sudo apt install -y ffmpeg
ffplay -version

Other distributions: install the ffmpeg package from your package manager; ffplay is included in the same package.

Contributing

Issues and PRs welcome. Extend internal agents via src/agents/ and assist.ts routing if you split personas.

Checklist before you promote the repo

  • Set author and (optionally) repository / homepage / bugs in [package.json](package.json) so npm and GitHub link correctly.
  • Replace OWNER/REPO in the commented CI badge when the remote exists, then uncomment the line.
  • Add a GitHub profile README or link this repo from your CV/LinkedIn—recruiters land here first from the link.
  • Set the repo About description and topics (e.g. mcp, langchain, typescript, ai-agents).

License

ISC — see [LICENSE](LICENSE).

Source & license

This open-source MCP server is cataloged on AgentStack and links to its original source — we do not rehost the code.

Install and usage instructions live in the source repository linked above.

Reviews

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Versions

  • v0.1.0 Imported from the upstream source.