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Machine Learning Model Serving Patterns and Best Practices A definitive guide to deploying, monitoring, and providing

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Machine Learning Model Serving Patterns and Best Practices:
A definitive guide to deploying, monitoring, and providing accessibility to ML models in production

English | 2022 | ISBN: 1803249900 | 336 Pages | PDF EPUB (True) | 19 MB

This book will cover the whole process, from the basic concepts like stateful and stateless serving to the advantages and challenges of each. Batch, real-time, and continuous model serving techniques will also be covered in detail. Later chapters will give detailed examples of keyed prediction techniques and ensemble patterns. Valuable associated technologies like TensorFlow severing, BentoML, and RayServe will also be discussed, making sure that you have a good understanding of the most important methods and techniques in model serving. Later, you'll cover topics such as monitoring and performance optimization, as well as strategies for managing model drift and handling updates and versioning. The book will provide practical guidance and best practices for ensuring that your model serving pipeline is robust, scalable, and reliable. Additionally, this book will explore the use of cloud-based platforms and services for model serving using AWS SageMaker with the help of detailed examples.


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