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ROOM E105 | End-to-End Time Series Analysis from Data to Consumption
Forecasting events using time series analysis is used in a variety of fields, from stock prices and sales forecasts to weather forecasts and patient disease progression. However, time series analysis is fundamentally different from other machine learning (ML) methods. In this hands-on workshop, we will use freely available data to look at the entire life cycle of such an ML project, from data, to model training, to use of the trained model, to MLOps and model drift.
Maximum Number of Participants: 16
A laptop with the latest version of Google Chrome is required for participation.
Target Audience: Data Engineer, Data Scientist, Citizen Data Scientist, Business Analysts, Data Analysts, business users, curious people
Prerequisites: Basic knowledge of time series problems (demand forecast etc.) as well as machine learning (training and scoring),
Level: Basic
Dr. Homa Ansari is a data scientist at DataRobot. She spent eight years on algorithm design for time series analysis from satellite data at the German Aerospace Center (DLR). Her expertise and publications are in the field of statistical signal processing and machine learning. She won two scientific awards, published 20+ technical articles and held 15+ talks at various space agencies and international conferences.