This course explores the benefits of using Vertex AI Feature Store, how to improve the accuracy of ML models, and how to find which data columns make the most useful features. This course also includes content and labs on feature engineering using BigQuery ML, Keras, and TensorFlow.
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Feature Engineering
This course is part of multiple programs.
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Instructor: Google Cloud Training
Sponsored by Coursera Learning Team
35,656 already enrolled
(1,773 reviews)
What you'll learn
Describe Vertex AI Feature Store and compare the key required aspects of a good feature.
Perform feature engineering using BigQuery ML, Keras, and TensorFlow.
Discuss how to preprocess and explore features with Dataflow and Dataprep.
Use tf.Transform.
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6 assignments
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There are 8 modules in this course
This module provides an overview of the course and its objectives.
What's included
1 video
This module introduces Vertex AI Feature Store.
What's included
6 videos1 reading1 assignment
Feature engineering is often the longest and most difficult phase of building your ML project. In the feature engineering process, you start with your raw data and use your own domain knowledge to create features that will make your machine learning algorithms work. In this module we explore what makes a good feature and how to represent them in your ML model.
What's included
9 videos1 reading1 assignment
This module reviews the differences between machine learning and statistics, and how to perform feature engineering in both BigQuery ML and Keras. We'll also cover some advanced feature engineering practices.
What's included
12 videos1 reading1 assignment3 app items
In this module you will learn more about Dataflow, which is a complementary technology to Apache Beam and both of them can help you build and run preprocessing and feature engineering.
What's included
3 videos1 reading1 assignment
In traditional machine learning, feature crosses don’t play much of a role, but in modern day ML methods, feature crosses are an invaluable part of your toolkit. In this module, you will learn how to recognize the kinds of problems where feature crosses are a powerful way to help machines learn.
What's included
5 videos1 reading1 assignment
TensorFlow Transform (tf.Transform) is a library for preprocessing data with TensorFlow. tf.Transform is useful for preprocessing that requires a full pass the data, such as: - normalizing an input value by mean and stdev - integerizing a vocabulary by looking at all input examples for values - bucketizing inputs based on the observed data distribution In this module we will explore use cases for tf.Transform.
What's included
5 videos1 reading1 assignment
This module is a summary of the Feature Engineering course.
What's included
4 readings
Instructor
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Learner reviews
1,773 reviews
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Showing 3 of 1773
Reviewed on Oct 27, 2018
This module covers a lot of tricks that should be employed during preprocessing to improve the prediction accuracy of machine learning methods.
Reviewed on Apr 21, 2019
faced multiple issuesa)Qwiklab wasnt allowing to login with error that said "account is locked"b) labs were not as interesting as others
Reviewed on Jul 1, 2018
Excellent Course and advice from experts about Feature Engineering and data pipelines utilizing advanced processes on GCP, thanks to Google and Coursera.
Recommended if you're interested in Data Science
Google Cloud
Columbia University
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