Staff Machine Learning Engineer, Dynamic Pricing

Company : Uber
Location : San Francisco, CA, 94199
Posted Date : 15 October 2025
Job Details
Staff Machine Learning Engineer, Dynamic Pricing
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The mission of the Surge team is to maintain overall marketplace reliability by balancing supply/demand in real-time through dynamic pricing. We build scalable real-time systems to understand the state of the market, forecast future demand, make predictions using ML models, solve network optimization programs, and eventually make pricing decisions for each rider session.
Surge plays a critical role in service of Uber's mission to make transport accessible. We generate billions of dollars in annual gross bookings for the company by optimizing network efficiency and make a significant contribution to driver earnings. In addition to pricing, the signals we generate are some of the most important features used in practically every optimization/ML system across Uber. Although we are a backend team, what we do has an outsized impact on our riders because prices and reliability are two of the most important elements of customer experience.
What You'll Do
- Work with a mixed team of Engineers, Operations Researchers, and Economists to build large-scale pricing optimization systems to set prices based on real-time marketplace conditions for Uber's rides products globally.
- Build and train machine learning models.
- Initiate new areas where machine learning models can make a large impact on the o
Basic Qualifications
- PhD in relevant fields (CS, EE, Math, Stats, etc.) with a focus on Machine Learning.
- 4+ years of experience in an ML role with an emphasis on data and experiment driven model development.
- Expertise in deep learning and optimization algorithms.
- Experience with ML frameworks such as PyTorch and TensorFlow.
- Experience building and productionizing innovative end-to-end Machine Learning systems.
- Proficiency in one or more coding languages such as Python, Java, Go, or C++.
- Strong communication skills and can work effectively with cross-functional partners.
- Strong sense of ownership and tenacity toward hard machine-learning projects.
Preferred Qualifications
- Experience in serving and monitoring online training systems such as real time recommendation systems.
- Experience designing and implementing novel metrics for performance evaluation.
- Experience handling time series data and time series forecasting (experience handling spatial temporal data is plus).
- Deep understanding of models such as VAE (Variational Auto Encoder), SSM (State space model), and Normalizing Flow.
- Experience in inference optimization and monitoring model performance efficiency and being able to identify bottlenecks.
- Proven track record in conducting experiments and tracking models in high-complexity environments.
For San Francisco, CA-based roles: The base salary range for this role is USD$223,000 per year - USD$248,000 per year. For Sunnyvale, CA-based roles: The base salary range for this role is USD$223,000 per year - USD$248,000 per year. For all US locations, you will be eligible to participate in Uber's bonus program, and may be offered an equity award & other types of comp. You will also be eligible for various benefits. More details can be found at the following link
Seniority level
- Not Applicable
Employment type
- Full-time
Job function
- Engineering and Information Technology
Industries
- Internet Marketplace Platforms
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