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 VodafoneZiggo
22,651 already enrolled
(340 reviews)
Skills you'll gain
- Financial Market
- Decision Tree Learning
- Applied Machine Learning
- Scikit Learn (Machine Learning Library)
- Dimensionality Reduction
- Artificial Neural Networks
- Portfolio Management
- Jupyter
- Exploratory Data Analysis
- Machine Learning
- Financial Trading
- Regression Analysis
- Python Programming
- Correlation Analysis
- Financial Services
- Unsupervised Learning
- Supervised Learning
- Reinforcement Learning
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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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340 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 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 Sep 2, 2019
Great course which covers both theories as well as practical skills in the real implementations in the financial world.
Reviewed on Sep 10, 2021
I liked the course, but the bugs in the programming assignments are sometimes unbearable.
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