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Register for 1/24 Webinar on Causal AI in Business Practices - Victor Lo & Victor Chen Talk

  • 1.  Register for 1/24 Webinar on Causal AI in Business Practices - Victor Lo & Victor Chen Talk

    Posted 01-14-2025 14:32
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    Overview

    This webinar will explore the growing role of causal AI in uncovering cause-and-effect relationships within complex systems. The session will highlight how causal AI differs from traditional predictive models, emphasizing its potential to improve decision-making across various domains. Attendees will gain insights into techniques for measuring the impact of interventions and understanding causal mechanisms. Broader examples will illustrate its application in optimizing strategies and enhancing outcomes. Key challenges, such as data reliability and model validation, will also be explored. The webinar will conclude with practical guidance on leveraging causal AI in dynamic and high-impact settings.

    See full details on event page: NISS AI, Statistics and Data Science in Practice Webinar: Victor Lo & Victor Chen - Causal AI in Business Practices | National Institute of Statistical Sciences

    Speakers 

    Victor Lo, Senior Vice President of Data Science and Artificial Intelligence, Workplace Investing at Fidelity Investments

    Victor Zitian Chen, PhD, Head of Science Excellence, PXT Central Science at Amazon

    Date: Friday, January 24, 2025 - 12:00pm to 1:30pm ET

    Abstract: We will first discuss why we should care about causal inference and then provide an overview of three major schools of thought and their key approaches from the disciplines of Statistics, Epidemiology, Computer Science, and Economics/Econometrics. The techniques developed in these fields have been applied to a wide range of fields including medical sciences, economics, political science, education, and business analytics. Their successes in the real world have led to winning a Turing Award (2011) and Nobel Prizes in Economics (2019, 2021). We will then dive deep to explore the intersection between causal inference and AI in solving business problems. Extension to uplift modeling will also be covered in this seminar. Various real-life applications based on different approaches will be used for illustration.

    About the Speakers:

    Victor has served as the manager of quantitative teams in multiple organizations. He is currently Senior Vice President of Data Science and Artificial Intelligence in Workplace Solutions at Fidelity Investments. Victor has a master's degree in Operational Research from Lancaster University and a PhD in Statistics from the University of Hong Kong, and was a Postdoctoral Fellow in Management Science at the University of British Columbia. He is a co-editor of a graduate level econometrics book, published numerous articles in Data Mining, Marketing, Statistics, and Management Science literature, and is finishing a graduate level text book on causal inference for business. See full bio sketch on event page

    At Fidelity, he led the development and deployment of the first enterprise-wise platform for Causal and eXperiemntal Analytics (CAX). Before industry, Victor was a tenured professor in strategy and international business, with posts at Copenhagen Business School and UNC Charlotte. As a scholar-turned tech entrepreneur, he has built two start-ups and holds two pending patents. He was recently listed on the Business North Carolina Power List 2024 and named a CDO Magazine finalist for 2024 Top 40 under 40 Data Leaders among other recognitions.

    About the Moderator:

    Nancy has a long history of collaborative work across Battelle bringing statistics and machine learning to Battelle's deep capability in biology, chemistry, and material science. As a researcher and Project Management Professional, Nancy has worked and published on environmental exposure and risk assessment; transportation safety benefits; quantitative risk assessment related to chemical, biological, radiological and nuclear (CBRN) terrorism; bio surveillance; and bioinformatics. She managed the Health Analytics Division from 2017-2023, a team of approximately 100 data scientists that supports Battelle's contract research business. Nancy is a member of the Board of Trustees for the National Institute of Statistical Sciences (NISS), the Chair of NISS's Affiliates Committee, and a member of the Organ Procurement and Transplantation Network's Data Advisory Committee.

    The NISS AI, Statistics and Data Science in Practice is a monthly event series part of the NISS Collaboratory (CoLab) will bring together leading experts from industry and academia to discuss the latest advances and practical applications in AI, data science, and statistics. Each session will feature a keynote presentation on cutting-edge topics, where attendees can engage with speakers on the challenges and opportunities in applying these technologies in real-world scenarios. This series is intended for professionals, researchers, and students interested in the intersection of AI, data science, and statistics, offering insights into how these fields are shaping various industries. The series is designed to provide participants with exposure to and understanding of how modern data analytic methods are being applied in real-world scenarios across various industries, offering both theoretical insights, practical examples, and discussion of issues.

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    Randy Freret
    National Institute of Statistical Sciences
    rfreret@niss.org
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