Building Agentic AI Systems with DSPy
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Home > Computing and Information Technology > Computer science > Artificial intelligence > Natural language and machine translation > Building Agentic AI Systems with DSPy: From Reasoning Modules to Tool-Using LLMs
Building Agentic AI Systems with DSPy: From Reasoning Modules to Tool-Using LLMs

Building Agentic AI Systems with DSPy: From Reasoning Modules to Tool-Using LLMs


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About the Book

Building Agentic AI Systems with DSPy: From Reasoning Modules to Tool-Using LLMs Are you frustrated by fragile AI prototypes that can't handle real-world complexity? Many developers struggle to weave large language models (LLMs) into reliable, tool-using agents. "Building Agentic AI Systems with DSPy" shows you how to transform those prototypes into robust, production-ready pipelines. This book presents DSPy's signature-based programming model, which bridges LLM reasoning and external tools-databases, vector stores, APIs-while enforcing type safety and runtime checks. You'll learn to configure LLM backends, integrate MLflow for end-to-end tracing, and craft modules that validate inputs and guard against hallucinations. From constructing retrieval-augmented generation (RAG) workflows to implementing ReAct agents that alternate between "thought" and "action" steps, this guide equips you to build agents that actually solve problems. You'll gain hands-on skills and insights, including: Mastering DSPy's @signature decorator to enforce input/output schemas and catch errors early Building custom tools-wrappers for REST APIs, database queries, and third-party SDKs-that slot seamlessly into agent loops Designing RAG pipelines: connecting vector stores, retrieving relevant context, and feeding it into prompt templates for accurate responses Implementing ReAct patterns: orchestrating LLM reasoning alongside actions, handling retries, and incorporating Assert and Suggest for self-correction Automating prompt and few-shot example tuning with DSPy's Optimizer to maximize accuracy and minimize token costs Packaging agents into Docker containers, deploying to cloud platforms (AWS, GCP, Azure), and setting up CI/CD pipelines for continuous delivery Monitoring production systems: setting up MLflow tracking servers, capturing metrics, visualizing execution graphs, and debugging step by step Establishing self-improving loops that harvest user feedback, re-optimize pipelines in production, and ensure your agent evolves with changing data Securing workflows: fetching secrets from vaults, enforcing parameterized queries, and validating user inputs to prevent injections and data leaks Whether you're a developer, data scientist, or AI engineer, this book arms you with practical, battle-tested patterns for creating agentic AI systems that scale. Ready to build reliable, tool-driven agents that deliver real value? Grab your copy of "Building Agentic AI Systems with DSPy" today and start engineering the next generation of AI solutions.


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Product Details
  • ISBN-13: 9798287090463
  • Publisher: Independently Published
  • Publisher Imprint: Independently Published
  • Height: 229 mm
  • No of Pages: 216
  • Returnable: N
  • Sub Title: From Reasoning Modules to Tool-Using LLMs
  • Width: 152 mm
  • ISBN-10: 8287090466
  • Publisher Date: 06 Jun 2025
  • Binding: Paperback
  • Language: English
  • Returnable: N
  • Spine Width: 12 mm
  • Weight: 344 gr


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