The course aims at helping students to be able to solve practical ML-amenable problems that they may encounter in real life that include: (1) understanding where the problem one faces lands on a general landscape of available ML methods, (2) understanding which particular ML approach(es) would be most appropriate for resolving the problem, and (3) ability to successfully implement a solution, and assess its performance.



Fundamentals of Machine Learning in Finance
This course is part of Machine Learning and Reinforcement Learning in Finance Specialization

Instructor: Igor Halperin
Access provided by Information technology institute
22,588 already enrolled
(339 reviews)
Skills you'll gain
- Artificial Neural Networks
- Jupyter
- Portfolio Management
- Unsupervised Learning
- Exploratory Data Analysis
- Financial Market
- Python Programming
- Dimensionality Reduction
- Applied Machine Learning
- Machine Learning
- Financial Services
- Decision Tree Learning
- Financial Trading
- Supervised Learning
- Reinforcement Learning
- Correlation Analysis
- Regression Analysis
- Scikit Learn (Machine Learning Library)
Details to know

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There are 4 modules in this course
What's included
9 videos4 readings1 programming assignment1 ungraded lab
What's included
6 videos3 readings1 programming assignment1 ungraded lab
What's included
7 videos3 readings1 programming assignment1 ungraded lab
What's included
11 videos3 readings1 programming assignment1 ungraded lab
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Learner reviews
339 reviews
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- 4 stars
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- 3 stars
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- 2 stars
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Reviewed on Sep 10, 2021
I liked the course, but the bugs in the programming assignments are sometimes unbearable.
Reviewed on Jan 6, 2019
Excellent course. I only wish to have had programming assignment with RNN and Hidden Markov Models instead of three assignments on PCA. Although they highlighted a interesting application in finance.
Reviewed on Jul 24, 2020
Great class, but don't believe the programming assignment time estimates... takes way longer!
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