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Book Overview & Buying
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Table Of Contents
Mastering .NET Machine Learning
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The research analyst historically followed this pattern of discovery and analysis:

With the rise of the data scientist, that workflow has changed to something like this:

Notice how the work does not end after reporting the results of a model. Rather, the data scientist is often responsible for moving the working models from their desktop and into a production application. With this new responsibility, comes new power, to reverse-paraphrase Spider-Man. The data scientist's skillset becomes broader because they have to understand software engineering techniques to go along with their traditional skill set.
One thing that the data scientist knows by heart is this following workflow. Inside the Test With Experiment block, there is this:

In terms of time spent, the clean data block is very large compared to the other blocks. This is because most of the work effort is spent with data acquisition and preparation. Historically, much of this data munging was dealing with missing...
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