Machine Learning Interview Guide
Rehan Guha
Sold by Rarewaves.com UK, London, United Kingdom
AbeBooks Seller since June 11, 2025
New - Soft cover
Condition: New
Ships from United Kingdom to U.S.A.
Quantity: Over 20 available
Add to basketSold by Rarewaves.com UK, London, United Kingdom
AbeBooks Seller since June 11, 2025
Condition: New
Quantity: Over 20 available
Add to basketDescription
This book prepares you with the knowledge and skills to confidently excel in the exciting world of machine learning (ML) interviews and launch a successful career in this dynamic field.
This book offers a collection of curated questions and answers to help readers understand key ML concepts, including data processing, classification, regression, clustering, dimensionality reduction, time series, and natural language processing (NLP). While not exhaustive, it focuses on critical topics and common questions often encountered in interviews. The chapters highlight essential concepts without a strict order of importance, reflecting the informal nature of ML interviews. Alongside theoretical knowledge, the book emphasizes the importance of coding and real-world application for a deeper understanding. Practical exercises, coding projects, and continuous learning are crucial to mastering ML concepts.
By mastering the concepts and question-answer formats presented in this book, you will be well-prepared to tackle technical interview challenges and confidently showcase your ML expertise. This guide will help you achieve your career goals in the exciting field of ML.
Key Features
● Major topics and concepts covered in a question-answer format.
● One can gain expertise in how to present an answer during an ML interview.
● Helps to structure the interview process and make it streamlined as per the industry.
What you will learn
● Understand core data concepts for ML.
● Master classification and regression algorithms.
● Learn clustering and dimensionality reduction techniques.
● Analyze and forecast time-dependent data with time series analysis.
● Gain NLP proficiency and understand human language with techniques like tokenization, stemming, lemmatization, and advanced language models.
Who this book is for
This book can be used by an interviewee, interviewer, ML professionals who want to learn the interview structure, and ML practitioners who want to refresh their memory and use this book as a reference guide. Managerial and non-technical people can use this book to learn ML in unique ways through a question-answer format.
Table of Contents
1. Data Processing for Machine Learning
2. Classification
3. Regression
4. Clustering and Dimensionality Reduction
5. Time Series
6. Natural Language Processing
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