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Bridging the Gap: Integrating Data Science and Decision Science through Six Essential Questions
Data Science   Latest   Machine Learning

Bridging the Gap: Integrating Data Science and Decision Science through Six Essential Questions

Last Updated on January 14, 2024 by Editorial Team

Author(s): Peyman Kor

Originally published on Towards AI.

Data Science is the discipline of making data useful β€” But How?

It has been now more than one decade since Thomas H. Davenport and DJ Patilthree wrote their famous Harvard Business Review article:

β€œData Scientist: The Sexiest Job of the 21st Century”

The article made many discussions, and now, after a decade, we have thousands of job profiles titled β€œData Scientist.”

Many organizations have embraced the idea of having an analytic team in their structure.

Yet, it is a little bit surprising to see that according to Gartner report estimated that:

β€œ 60 percent of big data projects will fail to go beyond piloting and experimentation, and will be abandoned.”

In this blog, I reflect on how the field of Data Science/analytics can meet expectations and fulfill the anticipated value.

I believe the main challenge facing the analytics field in the upcoming decade will involve reducing the gap between β€œTime Spent Analyzing Data” and the actual β€œValue Creation” with data within organizations.

Then, how can data be used for β€œvalue creation”? Well, the field of β€œDecision Analysis,” or a more refined one proposed by Cassie Kozyrkov's β€œDecision Intelligence” [1], has some answers on how to β€œCreate Value.”

When we go to the literature on Descion Anlaysis [2] , we… Read the full blog for free on Medium.

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