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When AI Outperformed Financial Analysts – Alex Kim

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In this episode Glenn Hopper talks to the researcher responsible for the groundbreaking study which found that AI is better at conducting financial analysis than humans. Alex Kim, University of Chicago Booth School of Business, provides a full overview of his findings, methodology and the impact on FP&A, CFOs and finance from the attentiongrabbing study “Financial Statement Analysis with Large Language Models”. The analysis, which made headlines across the world, found AI produces a 60% rate of accuracy in predictive financial performance. Human experts’ accuracy tends to fall between 53% and 57%.

In this episode Alex Kim reveals the implications for finance professionals:


Alex’s finance background – from a Master’s degree in Business Administration to a Accounting and a dual Bachelor’s degree in Economics and Business Administration to his doctoral and PHD career
How he self taught himself coding and AI
Practically how do finance pros take the insights from this paper and use them in their day to day?
Why the model didn’t do so well with lossmaking or startup companies
Improving on the performance models using a startup company data
How can you combine AI and Human Intelligence
What humans can do better than AI in financial forecasting
Future research projects into information processing for investors
How to keep up to date on the latest ground breaking research in AI and Finance
My military experience stationed with US soldiers in South Korea
My favorite Excel feature ( and why one thing about Excel still cannot be rivaled).
Read the full paper here: https://papers.ssrn.com/sol3/papers.c...

Check out the analyzer for yourself here: https://chatgpt.com/g/g9P3sIn487fin...

Follow Alex Kim on Linkedin Ph.D. Student at the University of Chicago:   / alexgunwookim  

posted by Lubanowodj