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Program’s structure & philosophy
Several factors have been taken into consideration to structure the content of the program:
In brief, the program covers in detail theoretical concepts on business, statistics and data management, while it recognizes the importance of practical training on systems and tools. In addition, special care has been given to the “breadth requirement”: exposure on analytics applications in different fields and domains. The result is a well-balanced program between theory and practice. Theoretical concepts account for 50% of the program, systems and tools account for 25% of the program and the “breadth requirement” accounts for another 25% of the program. Theoretical concepts fall in four broad thematic areas:
Practical training on system and tools involve the following platforms: SAS, R, Hadoop and related projects, Spark, MongoDB, Redis, Neo4j, Python (tentatively).
Finally, case studies will be presented in the context of finance, marketing, health, energy, human resources, transportation, supply chain analytics.
Part-time program
The part time program consists of two years of coursework, followed by a semester-long thesis or capstone project. Details on the courses can be found here.
Fall Quarter, Year 1
Winter Quarter, Year 1
Spring Quarter, Year 1
Fall Quarter, Year 2
Winter Quarter, Year 2
Spring Quarter, Year 2
Capstone project/Thesis