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New York University

Guided Tour of Machine Learning in Finance

This course aims at providing an introductory and broad overview of the field of ML with the focus on applications on Finance. Supervised Machine Learning methods are used in the capstone project to predict bank closures. Simultaneously, while this course can be taken as a separate course, it serves as a preview of topics that are covered in more details in subsequent modules of the specialization Machine Learning and Reinforcement Learning in Finance. The goal of Guided Tour of Machine Learning in Finance is to get a sense of what Machine Learning is, what it is for and in how many different financial problems it can be applied to. The course is designed for three categories of students: Practitioners working at financial institutions such as banks, asset management firms or hedge funds Individuals interested in applications of ML for personal day trading Current full-time students pursuing a degree in Finance, Statistics, Computer Science, Mathematics, Physics, Engineering or other related disciplines who want to learn about practical applications of ML in Finance Experience with Python (including numpy, pandas, and IPython/Jupyter notebooks), linear algebra, basic probability theory and basic calculus is necessary to complete assignments in this course.

状态:Machine Learning Methods
状态:Statistical Methods
中级课程小时

精选评论

KN

5.0评论日期:Jul 25, 2022

Great course. but requires lot of patience. Uses lot of unnecessary symbols and equations to explain concepts. Overall it is a good overview of the big picture of ML in finance.

FB

4.0评论日期:Nov 5, 2019

Fantastic lectures, great first programming assignments with unfortunate tail quality of the programming assignments

KY

4.0评论日期:Apr 17, 2021

Great overview. Please provide more code examples as homework require a lot more than what the class covers!

AA

4.0评论日期:May 23, 2019

To much math in lectures, assignments are not coherent and complicated, im not sure that i need tensorflow from scratch to work with finance(Keras fits better)

HK

4.0评论日期:Jan 17, 2020

Great general overview of machine learning. I think the course can be re-organized to incorporate some of the theory and some coding tips as well, however.

MJ

4.0评论日期:Nov 16, 2019

The coding part could have been better explained and the reasoning for what is being done should be included in the coding videos.

MP

4.0评论日期:Aug 10, 2018

The Lectures and given readings are very useful and it is required to read them to complete the assignments which will otherwise be difficult

MG

4.0评论日期:Jun 9, 2019

Good material but assignments explanation were too sparse and even expectation of material not covered in videos or readings (example is Tobit regression in week 4).

SS

5.0评论日期:Feb 28, 2020

The course is easy to understand and give insightful details on how to apply machine learning in finance

TN

4.0评论日期:May 7, 2023

The course is great, but the code assessment isn't very clear about how to solve the problem. Instead, I had to figure out how to code on my own.

ZX

4.0评论日期:Jul 31, 2018

The course content is a mix of theory and practical stuff. One star off is due to the poor quality of programming assignment, i.e., unclear instructions and explanations.

CL

4.0评论日期:Jul 11, 2018

This will be a 5 star course when all of the technical issues are resolved. More timely feedback from the staff is desirable as well.

所有审阅

显示:20/210

Maciej Osiński
2.0
评论日期:Dec 6, 2018
Teemu Alexander Puutio
1.0
评论日期:Feb 24, 2019
Leo Mizuhara
2.0
评论日期:Dec 2, 2018
Dawid Laszuk
1.0
评论日期:Jan 27, 2019
Denis Kuzminykh
1.0
评论日期:Aug 21, 2018
George Dikos
2.0
评论日期:Oct 24, 2018
John Schwitz
3.0
评论日期:Apr 23, 2019
Bilal ELMSILI
2.0
评论日期:Jul 11, 2018
Steven Oshry
1.0
评论日期:Aug 12, 2018
B Student, CFA
5.0
评论日期:Aug 22, 2018
Minglu Zhang
1.0
评论日期:Aug 5, 2018
Chenyu Liu
4.0
评论日期:Feb 24, 2019
Dr Kiran R
2.0
评论日期:Jun 3, 2019
Ronald Bustamante Medina
1.0
评论日期:Mar 16, 2019
David Solis
5.0
评论日期:Mar 16, 2024
Walter O. Augenstein
4.0
评论日期:Jan 5, 2019
Christophe OLERON
4.0
评论日期:Apr 19, 2019
Sridhar Sundaraju
3.0
评论日期:Sep 16, 2019
Yi Bao
3.0
评论日期:Apr 14, 2019
Lee H
2.0
评论日期:May 21, 2020