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Machine Learning Engineering
86% of respondents would recommend this to a friend
NIO 2021
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This book is one of the few to offer perspectives on each step of the end-to-end process.
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What Stands Out
Detalles de producto
- Written by Andriy Burkov, author of The Hundred-Page Machine Learning Book
- Based on the author's 15 years of AI experience and industry leaders' insights
- Addresses best practices and design patterns for building scalable machine learning solutions
- Includes perspectives on decision-making, product management, data engineering, statistics, reliability engineering, and more
- Embraces the importance of learning from mistakes and provides guidance on preventing, detecting, and handling issues in practical machine learning
- Ideal for those seeking to use machine learning to solve business problems at scale
| Publisher | True Positive Inc. |
| Publication date | September 5, 2020 |
| Language | English |
| Print length | 310 pages |
| ISBN-10 | 1999579577 |
| ISBN-13 | 978-1999579579 |
| Item Weight | 1.3 pounds (590 grams) |
| Dimensions | 7.5 x 0.73 x 9.25 inches (19.1 x 1.9 x 23.5 cm) |
Who Should Buy?
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Aspiring Engineers
Ideal for those beginning their journey in machine learning engineering, providing foundational knowledge and practical application guidance.
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Data Scientists
Perfect for data scientists looking to expand their skill set and apply machine learning techniques in engineering projects.
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Tech Professionals
Beneficial for software engineers and IT professionals seeking to integrate machine learning strategies into their existing workflows.
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Beginners Only
Not suitable for those with no technical background or prior understanding of programming and data science concepts.
DESCRIPCIÓN DEL PRODUCTO
Machine Learning Engineering
Preguntas y respuestas de los clientes
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Pregunta:
What are the main topics covered in 'Machine Learning Engineering'?
Respuesta: The book covers a range of fundamental topics including supervised and unsupervised learning, model deployment, and performance evaluation. It emphasizes engineering principles essential for building robust machine learning systems. By addressing real-world applications and challenges, it prepares readers to implement and manage machine learning projects efficiently. -
Pregunta:
Who is the target audience for 'Machine Learning Engineering'?
Respuesta: This book is designed for software engineers, data scientists, and AI practitioners who are looking to deepen their understanding of machine learning from an engineering perspective. It's also suitable for advanced students who wish to gain practical insights into developing and deploying machine learning models. -
Pregunta:
What programming languages does 'Machine Learning Engineering' focus on?
Respuesta: The book primarily focuses on Python and its extensive machine learning libraries such as TensorFlow and PyTorch. Python is widely used in the industry, making this book relevant for practitioners aiming to implement machine learning solutions in real-world applications. -
Pregunta:
Does 'Machine Learning Engineering' include practical examples?
Respuesta: Yes, the book includes numerous practical examples and case studies to illustrate how theoretical concepts are applied in real-world scenarios. These examples enhance understanding and provide actionable insights for readers aspiring to excel in machine learning engineering. -
Pregunta:
Can beginners benefit from 'Machine Learning Engineering'?
Respuesta: While this book is mainly aimed at those with some technical background, motivated beginners with a basic understanding of programming and statistics can gain valuable insights. The clear explanations and practical examples will help them gradually build their knowledge and skills in machine learning. -
Pregunta:
What makes 'Machine Learning Engineering' different from other machine learning books?
Respuesta: This book uniquely focuses on the engineering aspects of machine learning projects, emphasizing the entire lifecycle from conception to deployment. Unlike many texts that dwell solely on algorithms, it integrates software engineering principles, making it essential for practitioners who want to create scalable and maintainable solutions. -
Pregunta:
How does 'Machine Learning Engineering' approach model evaluation?
Respuesta: The book provides a comprehensive approach to model evaluation by discussing various metrics and methodologies to assess model performance. This includes detailed explanations of concepts like precision, recall, F1-score, and ROC curves, empowering readers to make informed decisions about model selection and improvement. -
Pregunta:
Are there any prerequisites to read 'Machine Learning Engineering'?
Respuesta: Having a foundational knowledge of programming—particularly in Python—and an understanding of basic statistics will enhance the reading experience. Familiarity with concepts in machine learning is beneficial but not strictly necessary, as the book aims to guide readers through essential principles if they put in the effort. -
Pregunta:
How does 'Machine Learning Engineering' handle real-world challenges in machine learning?
Respuesta: The book addresses common challenges such as data quality, model drift, and scalability concerns. By providing insights on how to overcome these challenges, it prepares readers for the complexities of implementing successful machine learning systems in dynamic and unpredictable environments. -
Pregunta:
Where can I buy 'Machine Learning Engineering' in Nicaragua?
Respuesta: 'Machine Learning Engineering' can be purchased through Ubuy, a reliable e-commerce platform that offers a wide range of products. Ubuy provides an intuitive shopping experience for customers in Nicaragua, ensuring easy access to this insightful book.
Expert Systems Editorial Review
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NIO 2021
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características y beneficios
- Most complete applied AI book out there
- Filled with best practices and design patterns
- Written by an industry leader with 15 years of experience
- Covers all aspects of building reliable ML solutions
- Emphasizes the importance of monitoring and model maintenance
- A must-have for anyone working in machine learning
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