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Regular version of the site
Contacts

119049 Moscow, Russia
11 Pokrovskiy boulevard, room S629

Phone:

+7 (495) 772-95-90*27447, *27947, *27190
+7 (495) 916-88-08 (Master’s Programme Corporate Finance)

- Email: df@hse.ru

finance@hse.ru 

Administration
Head of the School Irina Ivashkovskaya

Head of Corporate Finance Research Center, Dr., tenured professor

Manager Uliana Nepryakhina

+7 495-772-95-90 (add. 27190)

Senior Administrator Olesya Galyanina

+7 495-772-95-90 (add. 27447)

Administrator Tatyana Lipatova

+7 495-772-95-90 (add. 27947)

Administrator Valentina Chaus

+7 495-772-95-90 (add. 27946)

Article
Investment in ESG Projects and Corporate Performance of Multinational Companies

Cherkasova V. A., Nenuzhenko I.

Journal of Economic Integration. 2022. Vol. 37. No. 1. P. 54-92.

Article
Bankruptcy factors at different stages of the lifecycle for Russian companies

Zelenkov Y., Fedorova E.

Electronic Journal of Applied Statistical Analysis. 2022. Vol. 15. No. 1. P. 187-210.

Working paper
Do Non-Interest Income Activities Matter For Banking Sector Efficiency? A Net Interest Margin Perspective

Kolade S. A., Semenova M.

Financial Economics. FE. Высшая школа экономики, 2022. No. WP BRP 87/FE/2022.

Book chapter
Validation of the effectiveness of the bank retail portfolio risk management procedure

Pomazanov M. V.

In bk.: The 8th International Conference on Information Technology and Quantitative Management (ITQM 2020 & 2021): Developing Global Digital Economy after COVID-19. Vol. 199: The 8th International Conference on Information Technology and Quantitative Management (ITQM 2020 & 2021): Developing Global Digital Economy after COVID-19. Manchester: Elsevier, 2022. P. 798-805.

Article
CEO Power and Risk-taking: Intermediate Role of Personality Traits

Korablev D., Poduhovich D.

Journal of Corporate Finance Research. 2022. Vol. 16. No. 1. P. 136-145.

Article
Economic Growth Models and FDI in the CIS Countries During the Period of Digitalization

Olkhovik V., Lyutova O. I., Juchnevicius E.

Научно-исследовательский финансовый институт. Финансовый журнал. 2022. Vol. 14. No. 2. P. 73-90.

Article
Special issue with the 2019 Future Directions in Accounting and Finance Education Conference, Moscow, Russia

Churyk N. T., Anna Vysotskaya, Kolk B. v.

Journal of Accounting Education. 2022. Vol. 58.

Book
Тенденции развития интернета: от цифровых возможностей к цифровой реальности

Абдрахманова Г. И., Васильковский С. А., Вишневский К. О. и др.

М.: Национальный исследовательский университет "Высшая школа экономики", 2022.

Article
Разработка рейтинга проектных рисков для телекоммуникационной компании

Гришунин С. В., Сулоева С. Б., Пищалкина И. И.

Организатор производства. 2022. Т. 30. № 1. С. 60-72.

Article
Разработка механизма гибкого управления рисками в сфере телекоммуникаций

Гришунин С. В., Сулоева С. Б., Пищалкина И. И.

Экономический анализ: теория и практика. 2022. Т. 21. № 3. С. 478-496.

Article
Development of the horizon index to evaluate long-termism of Russian non-financial companies

S. Grishunin, E. Naumova, N. Lukshina et al.

Russian Management Journal. 2021. Vol. 19. No. 4. P. 475-493.

Book chapter
Analysing the Determinants of Insolvency and Developing the Rating System for Russian Insurance Companies

Grishunin S., Bukreeva Alesya, Alyona A.

In bk.: The 8th International Conference on Information Technology and Quantitative Management (ITQM 2020 & 2021): Developing Global Digital Economy after COVID-19. Vol. 199: The 8th International Conference on Information Technology and Quantitative Management (ITQM 2020 & 2021): Developing Global Digital Economy after COVID-19. Manchester: Elsevier, 2022. P. 190-197.

Book
International Conference “Future Directions in Accounting and Finance Education”, 27-28 May 2019, Moscow, Russia

Edited by: А. Б. Высотская, B. v. Kolk.

Vol. 58. Elsevier, 2022.

Article
Prudential policies and systemic risk: The role of interconnections

Karamysheva M., Seregina E.

Journal of International Money and Finance. 2022. Vol. 127.

Article
How do fiscal adjustments work? An empirical investigation
In press

Karamysheva M.

Journal of Economic Dynamics and Control. 2022. Vol. 137.

Article
Do we reject restrictions identifying fiscal shocks? identification based on non-Gaussian innovations

Karamysheva M., Skrobotov A.

Journal of Economic Dynamics and Control. 2022. Vol. 138.

Article
ЛАТИНОАМЕРИКАНСКАЯ ТЕОЛОГИЯ ОСВОБОЖДЕНИЯ: ЭКОНОМИЧЕСКИЕ ПРЕДПОСЫЛКИ, СОСТОЯНИЕ, ОПЫТ ПРАВОСЛАВНОЙ РЕФЛЕКСИИ

Тихомиров Д. В.

Известия Санкт-Петербургского государственного экономического университета. 2022. № 4. С. 144-155.

Article
Проблема эндогенности в корпоративных финансах: теория и практика

Селезнёва З. В., Евдокимова М. С.

Финансы: теория и практика. 2022. Т. 26. № 3. С. 64-84.

Book chapter
Students’ Survey: Propensity to Innovate

Evdokimova M., Stepanova A. N.

In bk.: 38th EBES Conference - Program and Abstract Book. Istanbul: EBES, 2022. P. 39.

Article
Prove them wrong: Do professional athletes perform better when facing their former clubs?

Assanskiy A., Shaposhnikov D., Tylkin I. et al.

Journal of Behavioral and Experimental Economics. 2022. Vol. 98.

Article
Black-Litterman model with copula-based views in mean-CVaR portfolio optimization framework with weight constraints

Teplova T., Mikova E., Munir Q. et al.

Economic Change and Restructuring. 2023. Vol. 56. No. 1. P. 515-535.

Article
Институциональные инвесторы, инвестиционный горизонт и корпоративное управление

Повх К. С., Кокорева М. С., Степанова А. Н.

Экономический журнал Высшей школы экономики. 2022. Т. 26. № 1. С. 9-36.

Article
Credit scoring methods: latest trends and points to consider

Anton Markov, Zinaida Seleznyova, Victor Lapshin.

Journal of Finance and Data Science. 2022. Vol. 8. P. 180-201.

Python in Finance

2024/2025
Academic Year
ENG
Instruction in English
6
ECTS credits
Delivered by:
School of Finance
Type:
Mago-Lego
When:
1, 2 module

Instructor

Course Syllabus

Abstract

This is an introductory course on programming in Python, one of the most popular data-centric programming languages widely used across industries and in the academic environment. The increased demand for decision making based on insights from data results in an increased demand for qualified experts with a strong data analysis skillset. With this in mind, starting from language fundamentals, we will concentrate on practical approaches to solving basic problems, from collecting and importing data to generating reports. The main goal of the course is to provide the students with programming toolbox, form competence in basic Python as well as data-related Python libraries, and also prepare the students for studying more advanced topics and conducting rigorous empirical analyses on their own.
Learning Objectives

Learning Objectives

  • The course is aimed at developing basic Python programming skills necessary for data analysis. Upon completion, students will be able to use Python in their analytical work and complete all the essential steps of data engineering and analysis, from gathering, loading, and transforming data to building simple models and generating reports.
Expected Learning Outcomes

Expected Learning Outcomes

  • Be able to write Python code
  • Be able to import data, including typical financial data
  • Be able to transform data and merge multiple datasets
  • Be able to draw basic plots
  • Be able to present the results of data analysis in Jupyter notebooks.
Course Contents

Course Contents

  • Introduction to Python
  • Data Manipulation With Pandas
  • Intermediate Data Manipulation With Pandas
  • Importing Data in Python
  • Working with dates and times in Python. Strings in Python
  • Visualizing Data With Matplotlib and Seaborn
  • Exploratory Data Analysis in Python. Cleaning Data
  • Writing Functions
  • Basic Web Scraping in Python
  • Basic Predictive Modelling Toolbox
Assessment Elements

Assessment Elements

  • non-blocking Programming assignment
  • non-blocking Final project
Interim Assessment

Interim Assessment

  • 2024/2025 2nd module
    0.8 * Final project + 0.2 * Programming assignment
Bibliography

Bibliography

Recommended Core Bibliography

  • 9781491912140 - Vanderplas, Jacob T. - Python Data Science Handbook : Essential Tools for Working with Data - 2016 - O'Reilly Media - https://search.ebscohost.com/login.aspx?direct=true&db=nlebk&AN=1425081 - nlebk - 1425081

Recommended Additional Bibliography

  • 9781785284571 - Romano, Fabrizio - Learning Python - 2015 - Packt Publishing - http://search.ebscohost.com/login.aspx?direct=true&db=nlebk&AN=1133614 - nlebk - 1133614
  • G. Nair, V. (2014). Getting Started with Beautiful Soup. Birmingham, UK: Packt Publishing. Retrieved from http://search.ebscohost.com/login.aspx?direct=true&site=eds-live&db=edsebk&AN=691839

Authors

  • Vasilev Gleb Albertovich