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Mastering MLOps Architecture: From Code to Deployment
Paperback
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- Book Synopsis
- MLOps, a combination of DevOps, data engineering, and machine learning, is crucial for delivering high-quality machine learning results due to the dynamic nature of machine learning data. This book delves into MLOps, covering its core concepts, components, and architecture, demonstrating how MLOps fosters robust and continuously improving machine learning systems. By covering the end-to-end machine learning pipeline from data to deployment, the book helps readers implement MLOps workflows. It discusses techniques like feature engineering, model development, A/B testing, and canary deployments. The book equips readers with knowledge of MLOps tools and infrastructure for tasks like model tracking, model governance, metadata management, and pipeline orchestration. Monitoring and maintenance processes to detect model degradation are covered in depth.
- About The Author
- Raman Jhajj is a passionate leader in the data and software engineering space with experience building high-performing teams and leading organizations to become datadriven. He has experience in leading the development of SaaS applications, modern data platforms and MLOps infrastructure.
- Product Details
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- ISBN
- 9789355519498
- Format
- Paperback
- Publisher
- BPB Publications, (12 December 2023)
- Number of Pages
- 226
- Weight
- 376 grams
- Language
- English
- Dimensions
- 235 x 191 x 12 mm
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