2016-2018 Undergraduate and Graduate Bulletin (with addenda) 
    Oct 21, 2019  
2016-2018 Undergraduate and Graduate Bulletin (with addenda) [ARCHIVED CATALOG]

Financial Engineering, Technology and Algorithmic Finance Track, M.S.

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Graduates of the Technology and Algorithmic Finance Track are actively involved in the development and implementation of the entire spectrum of algorithmic trading strategies, software applications, databases and networks used in modern financial services firms. The techniques learned bridge computer science and finance to prepare graduates to participate in large-scale and mission-critical projects. Applications include high frequency finance, behavioral finance, agent-based modeling, algorithmic trading, and portfolio management.

Our alumns have developed software projects ranging from behavioral models to bespoke derivative valuations to financial trading, information management and tools and financial platforms. Our students are familiar with the use and role of technology in front, middle, and back offices; common trading strategies and how to implement and back-test them; and how to create new models and build new useful tools quickly.

Required to Complete the Financial Engineering MS program

  • 5 core courses, each 3 credits totaling 15 credits
  • Track-required courses totaling 7.5 credits
  • 1 required applied lab worth 1.5 credits
  • 6 credits of electives
  • 1 capstone experience of 3 credits
  • Capstone assessment (0 credits)
  • Bloomberg Certification (0 credits)

Total # of credits: 33

3 Courses from the Following

Students may choose from the courses below to fill the electives requirement in addition to the options in the Recommended Electives section.

Recommended Lab (1.5 credits)

The following are recommended labs for this track:

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