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Data / ML, Engineering

The New Version of Orbit (v1.1) is Released: The Improvements, Design Changes, and Exciting Collaborations

January 11, 2022 / Global
Featured image for The New Version of Orbit (v1.1) is Released: The Improvements, Design Changes, and Exciting Collaborations
Figure 1: New Package Design of Orbit. The coloring indicates membership in the 3 main classes: Forecaster (green), Model Template (blue), and Estimator (orange).
Figure 2: Dots are Turkish electricity demand daily data from January 1, 2000 to December 31, 2008. The color indicates if the data is used in the model training (black is training and green is test). The blue line is the KTR fit / prediction to the data. The vertical dashed line indicates the end of the training data.
Figure 3: A decomposition of the predicted electric load data into trend (top row), weekly seasonality (middle row), and yearly seasonality (bottom row).
Figure 4: Example of pair plots of posteriors.
Figure 5: Architecture of Orbit recurring backtesting system.
Figure 6: sMAPE and execution time of different models over 10 weeks.
Edwin Ng

Edwin Ng

Edwin Ng is a Senior Applied Scientist at Uber where he leads the team to build statistical and machine learning models to support measurement and strategic decisions in marketing. He was one of the speakers in the 40th International Symposium on Forecasting and AdKDD 2021 where he presented probabilistics forecasting and its applications in marketing.

Zhishi Wang

Zhishi Wang

Zhishi Wang is an Applied Scientist on Uber’s Marketing Science team. He mainly works on time series R&D, package development, and model platformization.

Yifeng Wu

Yifeng Wu

Yifeng Wu is an Applied Scientist on the Marketing Data Science team. Yifeng works on building the creative optimization platform and real time bidding strategies on display channels using causal inference. Yifeng is a contributor to Orbit.

Ariel Jiang

Ariel Jiang

Ariel Jiang is an Applied Scientist on Uber’s Marketing Data Science team. She works on planning and forecasting, marginal benefit, and experimentation.

Gavin Steininger

Gavin Steininger

Gavin Steininger is a Senior Applied Scientist at Uber where he works with a team to build statistical models for measuring the impact of marketing spend (in particular Offline Awareness campaigns). His background is Bayesian Geostatistics and free-to-play gaming.

Michale Guo

Michale Guo

Michale Guo is an Applied Scientist at Uber. He works on scalable forecasting systems. His background is in Mathematics and Financial Engineering.

Posted by Edwin Ng, Zhishi Wang, Yifeng Wu, Ariel Jiang, Gavin Steininger, Michale Guo