Library / Artificial Intelligence

Advanced RAG Masterclass: Build Production-Ready AI Systems

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About this course

“This course contains the use of artificial intelligence”The demand for intelligent AI applications has exploded, but most Retrieval-Augmented Generation (RAG) systems fail when deployed in production. Basic implementations often suffer from poor retrieval quality, hallucinations, limited context understanding, and scalability challenges. This course is designed to take you beyond introductory RAG concepts and teach you how to build production-ready RAG systems used in modern enterprises.

In this comprehensive masterclass, you will learn how to design and implement advanced retrieval architectures, including Corrective RAG (CRAG), Self-RAG, Agentic RAG, and Adaptive RAG. You'll explore how leading organizations build reliable AI applications by combining large language models (LLMs) with intelligent retrieval pipelines, robust evaluation frameworks, and scalable infrastructure.

We begin by understanding why traditional RAG implementations fail and how to architect modern solutions from the ground up. You will master advanced techniques such as semantic chunking, parent-child retrieval, sliding window strategies, and context preservation to improve retrieval accuracy and response quality. From there, you'll dive into Hybrid Search, combining dense vector retrieval with BM25, and learn how to optimize results using cross-encoder re-ranking, query expansion, and Hypothetical Document Embeddings (HyDE).

Next, you'll build next-generation systems using Graph RAG, enabling AI applications to reason over knowledge graphs, entities, and relationships. You'll also explore Agentic RAG and Multi-Agent Systems, where AI agents collaborate, plan, invoke tools, and autonomously retrieve information

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