Preface
As we write this book in 2024, the world of machine learning and artificial intelligence (ML/AI) is exploding, with new research, models, and technologies arriving nearly every day. While large language models (LLMs) and diffusion models are the exciting new things, the technologies for building those new models rest on a foundation of years of advancement in deep learning and even earlier classic approaches. All the previous work in this field seems to have reached a turning point where we are beginning to see the exponential growth of new applications, built on new capabilities, that will fundamentally accelerate progress in a wide range of fields and directly impact people’s lives. It’s an incredibly exciting time to be working in this field!
This gets us to the focus of this book, which is to take those technologies and use them to create new products and services.
Who Should Read This Book
If you’re working in ML/AI or if you want to work in ML/AI in any way other than pure research, this book is for you. It’s primarily focused on people who will have a job title of “ML engineer” or something similar, but in many cases, they’ll also be considered data scientists (the difference between the two job descriptions is often murky). On a more fundamental level, this book is for people who need to know about taking ML/AI technologies and using them to create new products and services. Putting models and applications into production might be the main focus of your job, or ...
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