Vector Database Deep Dive: Optimize AI Workflows for Speed, Accuracy, and Enterprise Scale
Language: English
Published by Independently published, 2025
- Softcover
- Used

Seller: GreatBookPrices, Columbia, MD, U.S.A.GreatBookPrices
AbeBooks seller since April 6, 2009
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- Title
- Vector Database Deep Dive: Optimize AI Workflows for Speed, Accuracy, and Enterprise Scale
- Author
- Mclucas, Cameron
- Publisher
- Independently published
- Publication year
- 2025
- Condition
- As New
- Binding
- Soft cover
- Language
- English
- ISBN 13
- 9798296370396
- Series
- Book 4 of 5: The AI Developer Series
Vector Database Deep Dive: Optimize AI Workflows for Speed, Accuracy, and Enterprise Scale
Why do some AI systems scale effortlessly while others collapse under pressure? Why do high-performing models still return irrelevant results? The answer often lies not in the models—but in the databases powering them.
Vector Database Deep Dive confronts one of the most pressing challenges in AI engineering today: how to manage high-dimensional data at speed and scale without compromising precision. This book delivers a technical blueprint for professionals and teams who want to harness the full potential of vector databases to accelerate retrieval-augmented generation (RAG), improve semantic search, and streamline end-to-end machine learning workflows.
Built on real-world use cases and production-ready practices, this book equips you with a modern, system-level understanding of how vector databases drive AI performance. Whether you're building intelligent chat systems, scaling recommendation engines, or supporting multimodal embeddings, you’ll learn how to architect, optimize, and integrate vector stores for maximum impact.
Inside, you’ll master:
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Structuring high-dimensional data for fast approximate nearest neighbor (ANN) search
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Indexing and filtering strategies for hybrid retrieval at scale
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Real-time ingestion, chunking, and embedding workflows with tools like FAISS, Qdrant, Milvus, Weaviate, and Elasticsearch
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Vector store evaluation frameworks for latency, recall, and throughput
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Memory-augmented applications and context window optimization using vector-backed architectures
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Scaling strategies for production deployments, from fine-tuning ingestion pipelines to sharding and horizontal scaling
You won’t just gain theory—you’ll build, deploy, and optimize live vector-based systems from the ground up, with clear code examples and deployment scenarios.
If you're an AI engineer, data architect, or software developer responsible for production ML systems, this book delivers the hands-on frameworks, mental models, and best practices you need to lead in the AI era.
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GreatBookPrices
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AbeBooks seller since April 6, 2009
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