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Tejasvi Addagada

Enterprise Data Head
Fortune 500 financial service provider
Member since
02 Sep 2014
Location
Mumbai
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29
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Followed by John Sims, Martha Boyle and 5 others you follow

Bio

Tejasvi Addagada is a data officer, privacy officer and business transformation specialist with a global bank.

Experience

Summary

Tejasvi Addagada, a seasoned Banking strategist, orchestrates the process and data management symphony. With over 18 years of success, Tejasvi is considered one of the early thought leaders in the industry.

The Data Alchemist
Tejasvi transitioned from a software engineer to a business analyst to roles like data officer and privacy officer, sensing the need for active data management.

Architect of Transformative Programs
Across Fortune 500 firms, Tejasvi crafts solutions that resonate with business needs.
His toolkit includes data strategy, risk management, app service rationalization, and process excellence.

Thought Leader and Author
Connected with industry thought leaders, Tejasvi has published two best sellers on data and risk management for leaders and practitioners.

Latest opinions

Tejasvi Addagada

When to use Privacy Enhancing Technologies (PETs) vs. privacy management tools in Banks?

A more common question today is "whether privacy enhancing technologies should be used in conjunction with privacy management tools?". Privacy enhancing technologies are tools that can be used to protect data, such as encryption or masking. Privacy management tools are tools that can be used to manage who has access to data, such as acce...

27 June 2024 Bigger than Technology

Tejasvi Addagada

Are you confident in the quality of your data and its impact on your generative AI model insights?

The world of banking and financial services is abuzz with the potential of generative AI. It's a game-changer that can revolutionize customer service, boost revenue, and streamline operations. But with great power comes great responsibility - and a whole lot of regulatory challenges. We need a legal framework that balances market safety, consumer ...

22 February 2024 Bigger than Technology

Tejasvi Addagada

Does data risk need to be managed actively through a data risk function?

You must hear this often if you manage any kind of risk – risk and value go together. And that’s true, of course for data! Both data and its infrastructure must be managed for their benefits and risks. In sectors like Banking, regulations drive enterprises to assess data related risks. Prioritizing and managing data associated with financial or op...

09 December 2022 Data Management and Governance

See all 29 opinions by Tejasvi

Latest comments

In Financial Services, can we measure Accuracy of Customer Data with Artificial Intelligence?

I dont see any such inference even from public models. However, such insights even though can have a basis that cannot be given much weigt in a decision in traditional underwriting. Moreover, getting indicators that usually is not possible through AI/ML is a reality already. These help push the models far left to the value chain and assist in taking better decisions like an Income estimation.

19 Sep 2020 16:56 Read comment

Data Quality in Machine Learning.

The first Data Quality challenge is most often the acquisition of right data for Machine Learning Enterprise Use cases.

Even though the business objective is clear, data scientists may not be able to find the right data to use as inputs to the ML service/algorithm to achieve the desired outcomes.

As any data scientist will tell you, developing the model is less complex than understanding and approaching the problem/use-case the right way. Identifying appropriate data can be a significant challenge. You must have the “right data.”

More broadly speaking, Coverage, can be categorized under the Completeness Dimension of Data Quality and called the Record Population concept within the Conformed Dimensions standard. This should be one of the first checks to be performed before proceeding to other Data Quality checks.

 

19 Sep 2020 16:52 Read comment

Navigating Data Residency and Privacy Compliance in the Cloud

Niall, Good thoughts articulated well! What caught me in your article is the phrase " To do this, certain protocols and rules need to be put in place to ensure good governance over this process." To ensure this we need to progress on Governing the data in the cloud as well. Your further statements clearly bring out the classifications of data to be hosted in accordance to their risk profile.

This fundametally requires a change to approach in which data is logically and physically classified. http://www.dataversity.net/integrate-data-privacy/ is an article that briefs on how we can define requirements for data to be hosted on various platforms including cloud.

24 Nov 2017 10:41 Read comment

See all 8 comments by Tejasvi

Tejasvi writes about

  • security
  • payments
  • regulation & compliance
  • people
  • retail banking
  • sustainable
  • cloud
  • devops
  • start ups
  • financial inclusion
  • identity
  • covid-19
  • predictions

Tejasvi's opinion archive

  • 2024 (2)
  • 2022 (2)
  • 2021 (7)
  • 2020 (5)
  • 2016 (4)
  • 2015 (5)
  • 2014 (1)

Groups created by Tejasvi

  • Data Management and Governance

See all groups created

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