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Introducing MLOps: How to Scale Machine Learning in the Enterprise
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This book introduces the key concepts of MLOps to help data scientists and application engineers not only operationalize ML models to drive real business change but also maintain and improve those models over time.
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What Stands Out
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- Introduces MLOps to help operationalize and maintain ML models for real business impact
- Provides insights into the five steps of the model life cycle - Build, Preproduction, Deployment, Monitoring, and Governance
- Helps fulfill data science value by reducing friction throughout ML pipelines and workflows
- Assists in designing the MLOps life cycle to minimize organizational risks with unbiased, fair, and explainable models
- Offers practical insights and solutions for creating a successful MLOps environment
- Divided into three parts - introduction to MLOps, machine learning model life cycle, and tangible examples of MLOps in companies
| Publisher | O'Reilly Media |
| Publication date | January 5, 2021 |
| Edition | 1st |
| Language | English |
| Print length | 183 pages |
| ISBN-10 | 1492083291 |
| ISBN-13 | 978-1492083290 |
| Item Weight | 2.31 pounds (1.05 kg) |
| Dimensions | 7.25 x 0.5 x 9.5 inches (18.4 x 1.3 x 24.1 cm) |
Who Should Buy?
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Data Scientists
This book is ideal for data scientists looking to implement machine learning pipelines in enterprise environments effectively.
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IT Professionals
IT professionals learning about operationalizing machine learning models can gain critical insights from this comprehensive guide.
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Business Leaders
Business leaders wishing to understand how machine learning can drive business decisions will find this resource valuable.
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Beginners
Complete beginners may find the content too technical and may struggle without foundational machine learning knowledge.
Product Description
Introducing MLOps: How to Scale Machine Learning in the Enterprise
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Features & Benefits
- More than half of the analytics and ML models created by organizations never make it into production
- Challenges to operationalization can be technical and organizational
- The book introduces key concepts of MLOps to help operationalize ML models and drive business change
- Nine experts in ML provide insights into the five steps of the model life cycle
- ML models can be refined and operationalized for deployment in external business systems
- Designing the MLOps life cycle can minimize organizational risks with unbiased, fair, and explainable models
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