Causal Machine Learning

Aug 31, 2026
Hamburg
Aug 02, 2026
About

31. August bis 03. September 2026 | Hamburg

Registration deadline: August 2nd, 2026

While AI and Machine Learning are mainly tailored for predictions, based on correlations, many important questions in industry and research are causal questions. Examples are pricing, marketing mix modelling, resource allocation, to name a few, or many questions in Corporate Finance, Human Resources or Management in general. The emerging field of Causal AI / ML combines causal inference with modern methods in machine learning as complex, to estimate causal effects in high-dimensional, complex data. Due to the rise of digitization, such data sets are more and more available and can be utilized for research.

Lecturer
Prof. Dr. Martin Spindler
martin.spindler@uni-hamburg.de

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Doctoral Course, PhD Course
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