Complete Lyft API Integration for AI Agents with 16 Operations using MCP
Last edited 58 days ago
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Complete MCP server exposing 16 Lyft API operations to AI agents.
⚡ Quick Setup
- Import this workflow into your n8n instance
- Credentials Add Lyft credentials
- Activate the workflow to start your MCP server
- Copy the webhook URL from the MCP trigger node
- Connect AI agents using the MCP URL
🔧 How it Works
This workflow converts the Lyft API into an MCP-compatible interface for AI agents.
• MCP Trigger: Serves as your server endpoint for AI agent requests
• HTTP Request Nodes: Handle API calls to https://api.lyft.com/v1
• AI Expressions: Automatically populate parameters via $fromAI() placeholders
• Native Integration: Returns responses directly to the AI agent
📋 Available Operations (16 total)
🔧 Cost (1 endpoints)
• GET /cost: Retrieve Cost Estimate
🔧 Drivers (1 endpoints)
• GET /drivers: List Nearby Drivers
🔧 Eta (1 endpoints)
• GET /eta: Retrieve Pickup ETA
🔧 Profile (1 endpoints)
• GET /profile: Retrieve User Profile
🔧 Rides (7 endpoints)
• GET /rides: Update Sandbox Ride Status
• POST /rides: Request a Lyft
• GET /rides/{id}: Get the ride detail of a given ride ID
• POST /rides/{id}/cancel: Cancel a ongoing requested ride
• PUT /rides/{id}/destination: Update the destination of the ride
• PUT /rides/{id}/rating: Add the passenger's rating, feedback, and tip
• GET /rides/{id}/receipt: Get the receipt of the rides.
🔧 Ridetypes (1 endpoints)
• GET /ridetypes: Update Driver Availability
🔧 Sandbox (4 endpoints)
• PUT /sandbox/primetime: Set Prime Time Percentage
• PUT /sandbox/rides/{id}: Propagate ride through ride status
• PUT /sandbox/ridetypes: Preset types of rides for sandbox
• PUT /sandbox/ridetypes/{ride_type}: Driver availability for processing ride request
🤖 AI Integration
Parameter Handling: AI agents automatically provide values for:
• Path parameters and identifiers
• Query parameters and filters
• Request body data
• Headers and authentication
Response Format: Native Lyft API responses with full data structure
Error Handling: Built-in n8n HTTP request error management
💡 Usage Examples
Connect this MCP server to any AI agent or workflow:
• Claude Desktop: Add MCP server URL to configuration
• Cursor: Add MCP server SSE URL to configuration
• Custom AI Apps: Use MCP URL as tool endpoint
• API Integration: Direct HTTP calls to MCP endpoints
✨ Benefits
• Zero Setup: No parameter mapping or configuration needed
• AI-Ready: Built-in $fromAI() expressions for all parameters
• Production Ready: Native n8n HTTP request handling and logging
• Extensible: Easily modify or add custom logic
🆓 Free for community use! Ready to deploy in under 2 minutes.
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