Applied Data Science — Manufacturing — Part I of V


Details
In-line data has enormous predictive power of the quality of a product. For January, we'll be looking at measurement of parts as they move through a manufacturing line. The data set contains ~ 1 million entries
with ~ 3,000 numerical and categorical variables and a pass/fail annotation from quality control.
Participants will work together in small groups, brainstorming ideas and
building models to predict whether parts would PASS/FAIL quality control.
Everyone from beginners to experts is welcome. As always, our three
objectives are:
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Provide skill-level-appropriate challenges to all participants.
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Participants work with and learn from one another.
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Those who attend all five Sundays finish a project they can add to their github/resume/portfolio.
Bring your favorite data analysis software! We're language-agnostic.
If you don't already have a favorite analysis tool, here are a few
suggestions: http://goo.gl/W8Q6cV

Applied Data Science — Manufacturing — Part I of V