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Machine Learning Design Patterns: Solutions to Common Challenges in Data Preparation, Model Building, and MLOps
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Capture best practices and solutions to recurring problems in machine learning
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What Stands Out
Product Details
- Catalog of machine learning design patterns
- Capture best practices and solutions to common problems in machine learning
- 30 patterns for data and problem representation, operationalization, repeatability, reproducibility, flexibility, explainability, and fairness
- Detailed explanations, potential solutions, and recommendations for each pattern
- Identify and mitigate challenges in training, evaluating, and deploying ML models
- Represent data for different ML model types
- Build a robust training loop and deploy scalable ML systems
- Interpret model predictions and ensure fairness for users
| Publisher | O'Reilly Media |
| Publication date | November 24, 2020 |
| Edition | 1st |
| Language | English |
| Print length | 405 pages |
| ISBN-10 | 1098115783 |
| ISBN-13 | 978-1098115784 |
| Item Weight | 2.31 pounds (1.05 kg) |
| Dimensions | 9.06 x 0.94 x 6.85 inches (23 x 2.4 x 17.4 cm) |
Who Should Buy?
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Data Scientists
Ideal for data scientists seeking practical solutions to streamline their workflows in model building and data preparation.
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ML Engineers
ML engineers can benefit from structured approaches to implement MLOps principles effectively while addressing deployment challenges.
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Students and Practitioners
Students of machine learning will find this resource invaluable for understanding common industry challenges and solutions.
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Absolute Beginners
Users with no prior knowledge of machine learning might find the content too complex or advanced for their understanding.
Product Description
Machine Learning Design Patterns: Solutions to Common Challenges in Data Preparation, Model Building, and MLOps
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Intelligence & Semantics Editorial Review
"Machine Learning Design Patterns: Solutions to Common Challenges in Data Preparation, Model Building, and MLOps" is a book that aims to provide practical solutions to common challenges in the field of machine learning. The book covers design patterns for data treatment, model design, and MLOps, with a focus on computer science perspectives. Overall, the book received positive reviews from readers. Many appreciated the easy-to-read structure and the abundance of real-world examples. It was reassuring for readers to see patterns they use in practice documented in the book. The book was also praised for providing alternative design patterns that were not previously known. However, some reviewers noted potential limitations in the book. The content seemed to only scratch the surface of machine learning practice, making it more suitable for beginners or laymen. On the other hand, the omission of technical details made it difficult for those unfamiliar with the described approaches to understand how they work. Additionally, some felt that the book overly focused on promoting technologies related to Google Cloud and Tensorflow, rather than discussing ideas in a technology-agnostic manner. Despite these limitations, the book was generally recommended for its value in providing an understanding of the toolkit that machine learning engineers need for model development. Readers found Chapter 8 particularly useful, as it delved into common patterns by use case and data type, enumerating different types of problems and the tools to tackle them.
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Pros
- Provides practical solutions and alternative design patterns
- Easy-to-read structure with real-world examples
- Valuable reference for specific machine learning workflows
- Covers common challenges in data preparation, model building, and MLOps
Cons
- May be too basic for experienced ML researchers/engineers
Product Price History
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Features & Benefits
- 30 design patterns for data and problem representation, operationalization, repeatability, reproducibility, flexibility, explainability, and fairness
- Identify and mitigate common challenges in training, evaluating, and deploying ML models
- Represent data for different ML model types
- Choose the right model type for specific problems
- Build a robust training loop and deploy scalable ML systems
- Interpret model predictions and ensure fairness for users
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