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#11: Personalized Advertising, Economic and Generative Recommenders with Flavian Vasile

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Content provided by Marcel Kurovski. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Marcel Kurovski 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://ro.player.fm/legal.

In this episode of Recsperts we talk to Flavian Vasile about the work of his team at Criteo AI Lab on personalized advertising. We learn about the different stakeholders like advertisers, publishers, and users and the role of recommender systems in this marketplace environment. We learn more about the pros and cons of click versus conversion optimization and transition to econ(omic) reco(mmendations), a new approach to model the effect of a recommendations system on the users' decision making process. Economic theory plays an important role for this conceptual shift towards better recommender systems.

In addition, we discuss generative recommenders as an approach to directly translate a user’s preference model into a textual and/or visual product recommendation. This can be used to spark product innovation and to potentially generate what users really want. Besides that, it also allows to provide recommendations from the existing item corpus.

In the end, we catch up on additional real-world challenges like two-tower models and diversity in recommendations.

Enjoy this enriching episode of RECSPERTS - Recommender Systems Experts.

Chapters:

  • (02:37) - Introduction Flavian Vasile
  • (06:46) - Personalized Advertising at Criteo
  • (18:29) - Moving from Click to Conversion optimization
  • (23:04) - Econ(omic) Reco(mmendations)
  • (41:56) - Generative Recommender Systems
  • (01:04:03) - Additional Real-World Challenges in RecSys
  • (01:08:00) - Final Remarks

Links from the Episode:

Papers:

General Links:

  continue reading

24 episoade

Artwork
iconDistribuie
 
Manage episode 349833733 series 3288795
Content provided by Marcel Kurovski. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Marcel Kurovski 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://ro.player.fm/legal.

In this episode of Recsperts we talk to Flavian Vasile about the work of his team at Criteo AI Lab on personalized advertising. We learn about the different stakeholders like advertisers, publishers, and users and the role of recommender systems in this marketplace environment. We learn more about the pros and cons of click versus conversion optimization and transition to econ(omic) reco(mmendations), a new approach to model the effect of a recommendations system on the users' decision making process. Economic theory plays an important role for this conceptual shift towards better recommender systems.

In addition, we discuss generative recommenders as an approach to directly translate a user’s preference model into a textual and/or visual product recommendation. This can be used to spark product innovation and to potentially generate what users really want. Besides that, it also allows to provide recommendations from the existing item corpus.

In the end, we catch up on additional real-world challenges like two-tower models and diversity in recommendations.

Enjoy this enriching episode of RECSPERTS - Recommender Systems Experts.

Chapters:

  • (02:37) - Introduction Flavian Vasile
  • (06:46) - Personalized Advertising at Criteo
  • (18:29) - Moving from Click to Conversion optimization
  • (23:04) - Econ(omic) Reco(mmendations)
  • (41:56) - Generative Recommender Systems
  • (01:04:03) - Additional Real-World Challenges in RecSys
  • (01:08:00) - Final Remarks

Links from the Episode:

Papers:

General Links:

  continue reading

24 episoade

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