Statics and Dynamics for Engineering Students
16 hours
83 lessons, 950 minutes in all.
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454 courses for “DevOps Full Course 2025 | Learn DevOps in 8 Hours | DevOps and Cloud Computing”
16 hours
83 lessons, 950 minutes in all.
2 minutes
A 2-minute video from Math and Engineering with Dr. A.
New courses, a couple of emails a month. One click unsubscribes.
53 hours
29 lessons, 3164 minutes in all.
2 hours
FRONTLINE's documentary on artificial intelligence, its economics and who carries the cost.
5 hours
Five hours on MLOps: getting a model out of a notebook and keeping it running.
12 hours
Twelve hours of Python, taught by building rather than by explaining.
12 hours
Twelve hours of Python for beginners, taken slowly enough to follow along.
4 hours
Four and a half hours of Python from nothing, the course most people start with.
55 minutes
Confusion matrices, precision, recall and ROC curves, worked through in scikit-learn.
45 minutes
Forty-five minutes of scikit-learn, from fitting a model to scoring it.
32 minutes
A university lecture on evaluating a model: the measures, and what each one hides.
13 minutes
Thirteen minutes on how a model is judged, and why accuracy alone is rarely the answer.
55 minutes
Building a working e-commerce data pipeline, start to finish, with Snowflake and dbt.
3 hours
Nearly three hours on time series: the components, the models, and the forecasts built from them.
2 hours
An hour and a half of forecasting in Python, for somebody who has not done it before.
2 hours
An hour and a half on association rules: finding what goes with what in a transaction log.
2 hours
Two and a half hours on decision trees — how one is built, and how it is read.
4 hours
Three and a half hours on clustering: k-means, hierarchical methods, and choosing between them.
10 hours
Ten hours of data mining: the techniques, the algorithms and what each is for.
22 minutes
How categorical columns become numbers a model can use, and what goes wrong when they do not.