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Title & Speakers Event
Kyle Stratis 2026-01-21 · 19:00
Kyle Stratis – Founder @ Stratis Data Labs

Speaker: Kyle Stratis, Founder at Stratis Data Labs

Dr. Ali Arsanjani 2026-01-21 · 19:00
Dr. Ali Arsanjani – Director of Applied AI Engineering; Head of AI Center of Excellence @ Google Cloud

Speaker: Dr. Ali Arsanjani, Director of Applied AI Engineering; Head of AI Center of Excellence at Google Cloud

AI/ML Cloud Computing GCP
Sanyam Bhutani 2026-01-21 · 19:00
Sanyam Bhutani – Partner Engineer, Generative AI Engineer @ Meta

Speaker: Sanyam Bhutani, Partner Engineer, Generative AI Engineer at Meta

AI/ML GenAI
Cameron Royce Turner 2026-01-21 · 19:00
Cameron Royce Turner – Founder and CEO @ TRUIFY.AI

Speaker: Cameron Royce Turner, Founder and CEO at TRUIFY.AI

AI/ML
Claire Longo 2026-01-21 · 19:00
Claire Longo – AI Researcher @ Comet

Speaker: Claire Longo, AI Researcher at Comet

AI/ML
Sara Zanzottera 2026-01-21 · 19:00
Sara Zanzottera – Senior Developer @ BNP Paribas

Speaker: Sara Zanzottera, Senior Developer at BNP Paribas

Harpreet Sahota 2026-01-21 · 19:00
Harpreet Sahota – data science leader @ Voxel51

Speaker: Harpreet Sahota, Hacker-in-Residence at Voxel51

Holt Skinner 2026-01-21 · 19:00
Holt Skinner – Developer Advocate @ Google Cloud AI

Speaker: Holt Skinner, Developer Advocate at Google Cloud AI

AI/ML Cloud Computing GCP
Interactive Workshops 2026-01-21 · 19:00
Michael Albada – Principal Applied Scientist @ Microsoft , Manoj Saxena – Founder & CEO @ Trustwise , Holt Skinner – Developer Advocate @ Google Cloud AI , Andrea Kropp – Applied AI Engineer @ LandingAI , Kyle Stratis – Founder @ Stratis Data Labs , Harpreet Sahota – data science leader @ Voxel51 , Dr. Ali Arsanjani – Director of Applied AI Engineering; Head of AI Center of Excellence @ Google Cloud , Sanyam Bhutani – Partner Engineer, Generative AI Engineer @ Meta , Ivan Lee – CEO @ Datasaur , Claire Longo – AI Researcher @ Comet , Cameron Royce Turner – Founder and CEO @ TRUIFY.AI , Sara Zanzottera – Senior Developer @ BNP Paribas , Sinan Ozdemir – AI & LLM Expert; Author; Founder & CTO @ LoopGenius , Zain Hasan, PhD – Staff AI/ML Engineer - DevRel @ Together AI

Live, expert-led sessions where you’ll build real agentic systems step-by-step.

Agentic AI Summit | Virtual
Manoj Saxena 2026-01-21 · 19:00
Manoj Saxena – Founder & CEO @ Trustwise

Speaker: Manoj Saxena, Founder & CEO at Trustwise

Ivan Lee 2026-01-21 · 19:00
Ivan Lee – CEO @ Datasaur

Speaker: Ivan Lee, CEO at Datasaur

Zain Hasan, PhD 2026-01-21 · 19:00
Zain Hasan, PhD – Staff AI/ML Engineer - DevRel @ Together AI

Speaker: Zain Hasan, PhD, Staff AI/ML Engineer - DevRel at Together AI

AI/ML
Sinan Ozdemir 2026-01-21 · 19:00
Sinan Ozdemir – AI & LLM Expert; Author; Founder & CTO @ LoopGenius

Speaker: Sinan Ozdemir, AI Author and Educator

AI/ML
Andrea Kropp 2026-01-21 · 19:00
Andrea Kropp – Applied AI Engineer @ LandingAI

Speaker: Andrea Kropp, Applied AI Engineer at LandingAI

AI/ML
Michael Albada 2026-01-21 · 19:00
Michael Albada – Principal Applied Scientist @ Microsoft

Speaker: Michael Albada, Principal Applied Scientist at Microsoft

Microsoft
Event Helsinki dbt Meetup 2025-11-20
Simo Tumelius – Co-Founder @ Breakout Labs
dbt
Gustav Byberg Skyle – Specialist Solutions Architect @ Databricks
dbt Databricks
Finnair's journey with dbt 2025-11-20 · 17:10
Venkata Varanasi – Data Platform Architect @ Finnair
dbt

Discover how enterprises are building their data fabric with CTERA. In this session, Technical Product Marketing Manager and former CTERA customer Kyle Edsall will show how organizations are eliminating data silos, empowering collaboration across sites, and securing critical data. See how CTERA enables IT leaders to scale with confidence and set the foundation for future data-driven innovation.

Marketing Fabric
Microsoft Ignite 2025
Aditya Chichani – senior machine learning engineer @ Walmart , Kyle Polich – host

In this episode of Data Skeptic's Recommender Systems series, Kyle sits down with Aditya Chichani, a senior machine learning engineer at Walmart, to explore the darker side of recommendation algorithms. The conversation centers on shilling attacks—a form of manipulation where malicious actors create multiple fake profiles to game recommender systems, either to promote specific items or sabotage competitors. Aditya, who researched these attacks during his undergraduate studies at SPIT before completing his master's in computer science with a data science specialization at UC Berkeley, explains how these vulnerabilities emerge particularly in collaborative filtering systems. From promoting a friend's ska band on Spotify to inflating product ratings on e-commerce platforms, shilling attacks represent a significant threat in an industry where approximately 4% of reviews are fake, translating to $800 billion in annual sales in the US alone. The discussion delves deep into collaborative filtering, explaining both user-user and item-item approaches that create similarity matrices to predict user preferences. However, these systems face various shilling attacks of increasing sophistication: random attacks use minimal information with average ratings, while segmented attacks strategically target popular items (like Taylor Swift albums) to build credibility before promoting target items. Bandwagon attacks focus on highly popular items to connect with genuine users, and average attacks leverage item rating knowledge to appear authentic. User-user collaborative filtering proves particularly vulnerable, requiring as few as 500 fake profiles to impact recommendations, while item-item filtering demands significantly more resources. Aditya addresses detection through machine learning techniques that analyze behavioral patterns using methods like PCA to identify profiles with unusually high correlation and suspicious rating consistency. However, this remains an evolving challenge as attackers adapt strategies, now using large language models to generate more authentic-seeming fake reviews. His research with the MovieLens dataset tested detection algorithms against synthetic attacks, highlighting how these concerns extend to modern e-commerce systems. While companies rarely share attack and detection data publicly to avoid giving attackers advantages, academic research continues advancing both offensive and defensive strategies in recommender systems security.

AI/ML Computer Science Data Science Cyber Security
Data Skeptic