『Building Memory for AI Systems with MCP』のカバーアート

Building Memory for AI Systems with MCP

Connect Claude to Any Tool with Model Context Protocol

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Building Memory for AI Systems with MCP

著者: Dr. Priya Sharma
ナレーター: Douglas Birk's voice replica
¥1,750で会員登録し購入

30日間の無料体験後は月額¥1500で自動更新します。いつでも退会できます。

¥2,500 で購入

¥2,500 で購入

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概要

Your AI assistant loses all context the moment you close the chat. Your project history, codebase knowledge, and business data? Gone. You're stuck manually rebuilding context in every conversation, turning powerful AI into an expensive notepad.

Model Context Protocol (MCP) changes everything.

Building Memory for AI Systems with MCP shows developers, technical founders, and product builders how to integrate Claude AI with persistent memory systems to maintain context across sessions, access real data, and learn from experience over time.

What You'll Master:

• MCP Architecture & Setup: Configure Claude Desktop with filesystem, database, and cloud storage integrations using standardized protocols that prevent vendor lock-in

• Persistent Data Integration: Connect PostgreSQL, SQLite, Google Drive, GitHub, Slack, and 15+ other systems through practical, security-first implementations

• Vector Databases & Semantic Search: Build retrieval-augmented generation (RAG) systems with Pinecone, Chroma, and Weaviate for intelligent document discovery

• AI Agent Development: Design specialized agents with bounded context, robust error handling, and multi-agent orchestration patterns

• Production Deployment: Implement authentication, audit logging, rate limiting, and monitoring for enterprise-grade AI memory systems

Perfect for:

Developers building AI-powered products beyond basic chatbots

Technical founders automating business operations with persistent AI context

Product teams integrating AI agents into existing tool ecosystems

Anyone ready to move from stateless conversations to intelligent, context-aware AI systems

Why This Book Delivers:

Written by Dr. Priya Sharma, a former ML researcher turned practitioner, who left academia to democratize AI implementation. No theoretical fluff—just proven patterns, reusable templates, and a 60-day roadmap from first integration to production deployment.

©2026 Dr. Priya Sharma (P)2026 Dr. Priya Sharma
コンピュータサイエンス 機械理論・人工知能
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