In Part 3 of our MCP (Model Context Protocol) series, we move from understanding MCP concepts to building a practical AI Agent using OpenAI, MCP, and Python.
In the previous videos, we learned:
✅ What is MCP?
✅ Why AI Agents need MCP
✅ MCP Architecture
✅ How to build an MCP Server
✅ How to build an MCP Client
Now, we take the next step...
👉 We build an AI Agent that can discover MCP Tools, understand the user's request, select the appropriate tool, execute it through MCP, and use the result to generate the final answer.
00:00 – Introduction
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• AI Agent vs Traditional Chatbot
• OpenAI + MCP + Python Architecture
• Connecting an AI Agent to an MCP Server
• MCP Tool Discovery
• Converting MCP Tools for OpenAI
• OpenAI Tool Calling
• AI-driven Tool Selection
• MCP Client Tool Execution
• Returning Tool Results to the LLM
• Generating the Final AI Response
• Understanding the Complete Agentic AI Flow
• Why MCP is Powerful for Real-World AI Agents
• Python
• OpenAI API
• MCP (Model Context Protocol)
• MCP Python SDK
• MCP Server
• MCP Client
User
↓
AI Agent
↓
OpenAI LLM
↓
Tool Selection
↓
MCP Client
↓
MCP Server
↓
MCP Tool
↓
Tool Result
↓
OpenAI LLM
↓
Final Answer
This is where MCP becomes really interesting for Agentic AI.
MCP provides a structured way for AI Agents to discover and use external tools, making it easier to build powerful real-world AI applications.
Visit SomethingTalk1:
Teltam.in
Part 1: What is MCP?
Part 2: Build MCP Server & Client
Part 3: Build AI Agent using OpenAI + MCP + Python
Learn practical concepts in:
• Agentic AI
• MCP
• Generative AI
• LLMs
• LangChain
• LangGraph
• Python
• AI Engineering
• AI Tools
👍 If this tutorial helped you, please Like, Share, and Subscribe to SomethingTalk1.
#MCP #ModelContextProtocol #AIAgent #AgenticAI #OpenAI #Python #GenerativeAI #LLM #AIEngineering #SomethingTalk1
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