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Stop Pushing Products and Start Predicting Intent

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Manage episode 524954375 series 2833920
Content provided by Elevano. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Elevano or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://podcastplayer.com/legal.

Afrooz Ansaripour, Director of Data Science at Walmart, joins the show to explain how global leaders are shifting from simple historical tracking to predicting psychological triggers and customer intent. This episode explores the evolution of customer intelligence and how Generative AI is turning massive data sets into personalized, value driven experiences. Listeners will learn how to balance hyper personalization with foundational privacy to build lasting consumer trust.

Key Insights

Predict intent rather than just reporting past transactions to understand why a customer is with the brand.

Use Generative AI as an explainability layer to transform complex data platforms from black boxes into conversational tools.

Prioritize customer trust as a critical part of the user experience rather than just a legal requirement.

Integrate digital and physical signals to create a 360 degree view that reveals insights which would otherwise be invisible.

Focus on rapid technology adoption and curiosity as the primary drivers of success in modern AI teams.

Timestamped Highlights

01:51 Identifying the challenges and opportunities when managing millions of real time signals.

06:43 Strategies for showing genuine value to the customer without making them feel like just a part of a sale.

09:51 How LLMs are fundamentally changing the way data teams interpret unstructured feedback and behavioral patterns.

14:42 Managing privacy and ethical data practices while building personalized conversational AI.

19:14 Stitching together the online and offline journey to create a seamless customer experience.

22:52 The necessary evolution of data science skills toward storytelling and execution bias.

A Powerful Thought

"Personalization should never come at the expense of customer trust."

Tactical Steps

Combat the garbage in garbage out problem by refining cleaning processes to handle modern AI requirements.

Build an interactive layer or chatbot on top of data products to make insights instantly accessible and automated.

Translate technical insights into real world decisions to ensure customers actually benefit from data models.

Next Steps

Subscribe to the show for more insights into the future of tech. Share this episode with a peer who is currently navigating the complexities of customer data.

  continue reading

589 episodes

Artwork
iconShare
 
Manage episode 524954375 series 2833920
Content provided by Elevano. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Elevano or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://podcastplayer.com/legal.

Afrooz Ansaripour, Director of Data Science at Walmart, joins the show to explain how global leaders are shifting from simple historical tracking to predicting psychological triggers and customer intent. This episode explores the evolution of customer intelligence and how Generative AI is turning massive data sets into personalized, value driven experiences. Listeners will learn how to balance hyper personalization with foundational privacy to build lasting consumer trust.

Key Insights

Predict intent rather than just reporting past transactions to understand why a customer is with the brand.

Use Generative AI as an explainability layer to transform complex data platforms from black boxes into conversational tools.

Prioritize customer trust as a critical part of the user experience rather than just a legal requirement.

Integrate digital and physical signals to create a 360 degree view that reveals insights which would otherwise be invisible.

Focus on rapid technology adoption and curiosity as the primary drivers of success in modern AI teams.

Timestamped Highlights

01:51 Identifying the challenges and opportunities when managing millions of real time signals.

06:43 Strategies for showing genuine value to the customer without making them feel like just a part of a sale.

09:51 How LLMs are fundamentally changing the way data teams interpret unstructured feedback and behavioral patterns.

14:42 Managing privacy and ethical data practices while building personalized conversational AI.

19:14 Stitching together the online and offline journey to create a seamless customer experience.

22:52 The necessary evolution of data science skills toward storytelling and execution bias.

A Powerful Thought

"Personalization should never come at the expense of customer trust."

Tactical Steps

Combat the garbage in garbage out problem by refining cleaning processes to handle modern AI requirements.

Build an interactive layer or chatbot on top of data products to make insights instantly accessible and automated.

Translate technical insights into real world decisions to ensure customers actually benefit from data models.

Next Steps

Subscribe to the show for more insights into the future of tech. Share this episode with a peer who is currently navigating the complexities of customer data.

  continue reading

589 episodes

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