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Uber

Machine Learning Engineer - Ranking & Recommendations

Uber

Published 26 Mar 2026
New York, NY, USA
171K - 190K USD Annual
Full Time

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Role Highlights

Languages used

Python
GO
Java
C++

Key skills

Machine Learning
Generative AI
Data Architect
Computer Science
Critical Thinking
Optimization
DataSets
Infrastructure
Mathematics
PhD
Operations
Architecture
ETL
MapReduce

Tools, Libraries and Frameworks

HDFS
Hive
PyTorch
Tensorflow
Ray

Description

\\\\Role Location:\\\\ San Francisco, Sunnyvale, Seattle, or New York \\\\About the Role\\\\ The Shopping Ranking Team mission is enabling eaters to effortlessly make shopping decisions and find what they need. We pursue this mission via an ML-driven algorithmic approach, applying state-of-the-art Machine Learning (ML), Optimization techniques to learn from massive datasets Uber has, and build a scalable and reliable shopping intelligence ranking and recommendation systems. We are actively seeking individuals who excel in problem-solving and critical thinking, are proficient in coding, with proven track records of learning and growth, and have a deep interest in ML model, feature and infrastructure development. Candidates will have the opportunity to work across various lines, from infrastructure development to ML model development, productionalization, offering a diverse and enriching experience. Join us in our pursuit of excellence as we are building the next generation of Generative AI - shopping ranking and recommendation systems. \\\\\\\-\-\-\- What the Candidate Will Do ----\\\\ 1\\. Design and build Machine Learning models in Ranking and Recommendation domain. 2\\. Productionize and deploy these models for real-world application. 3\\. Review code and designs of teammates, providing constructive feedback. 4\\. Collaborate with Product and cross-functional teams to brainstorm new solutions and iterate on the product. \\\\\\\-\-\-\- Basic Qualifications ----\\\\ 1\\. Bachelor's degree or equivalent in Computer Science, Engineering, Mathematics or related field, with 4+ years of full-time engineering experience. 2\\. 2+ years of experience building and deploying machine learning models (or a PhD in a relevant field) 3\\. Experience working with multiple multi-functional teams(product, science, product ops etc). 4\\. Expertise in one or more object-oriented programming languages (e.g. Python, Go, Java, C++). 5\\. Experience with big-data architecture, ETL frameworks and platforms, such as HDFS, Hive, MapReduce, Spark, , etc. 6\\. Working knowledge of latest ML technologies, and libraries, such as PyTorch, TensorFlow, Ray, etc. 7\\. Proven track records of being a fast learner and go-getter, with willingness to get out of the comfort zone. \\\\\\\-\-\-\- Preferred Qualifications ----\\\\ 1\\. Experience with building ranking and recommendation systems in production, making practical tradeoffs among algorithm sophistication, compute complexity, maintainability, and extensibility in production environments. 2\\. Experience with taking on vague business problems, translating them into ML + Optimization formulation, identifying the right features, model structure and optimization constraints, and delivering business impact. 3\\. Experience with design and architecture of ML systems and workflows. 4\\. Experience owning and delivering a technically challenging, multi-quarter project end to end. For New York, NY-based roles: The base salary range for this role is USD$171,000 per year - USD$190,000 per year. For San Francisco, CA-based roles: The base salary range for this role is USD$171,000 per year - USD$190,000 per year. For Seattle, WA-based roles: The base salary range for this role is USD$171,000 per year - USD$190,000 per year. For Sunnyvale, CA-based roles: The base salary range for this role is USD$171,000 per year - USD$190,000 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. All full-time employees are eligible to participate in a 401(k) plan. You will also be eligible for various benefits. More details can be found at the following link Uber is proud to be an Equal Opportunity/Affirmative Action employer. All qualified applicants will receive consideration for employment without regard to sex, gender identity, sexual orientation, race, color, religion, national origin, disability, protected Veteran status, age, or any other characteristic protected by law. We also consider qualified applicants regardless of criminal histories, consistent with legal requirements. If you have a disability or special need that requires accommodation, please let us know by completing this form-

Required Qualifications and Skills

Candidates require a Bachelor's degree or equivalent in Computer Science, Engineering, Mathematics, or a related field, along with at least four years of full-time engineering experience. A minimum of two years of experience in building and deploying machine learning models is necessary, or a PhD in a relevant field. Expertise in object-oriented programming languages such as Python, Go, Java, or C++ is essential. Experience with big-data architecture and ETL frameworks like HDFS, Hive, MapReduce, and Spark is also required. Familiarity with current ML technologies and libraries, including PyTorch, TensorFlow, and Ray, is needed. The role also values individuals who are fast learners, go-getters, and willing to step outside their comfort zones.

Disclaimer

Disclaimer: Job and company description information and some of the data fields may have been generated via GPT-4 summarisation and could contain inaccuracies. The full external job listing link should always be relied on for authoritative information.

About the company

Uber

Size

90122

HQ

San Francisco, US

Public/Private

Public Company

Description

We are Uber. The go-getters. The kind of people who are relentless about our mission to help people go anywhere and get anything and earn their way. Movement is what we power. Its our lifeblood. It runs through our veins. Its what gets us out of bed each morning. It pushes us to constantly reimagine how we can move better. For you. For all the places you want to go. For all the things you want to get. For all the ways you want to earn. Across the entire world. In real time. At the incredible speed of now. The idea for Uber was born on a snowy night in Paris in 2008, and ever since then our DNA of reimagination and reinvention carries on. Weve grown into a global platform powering flexible earnings and the movement of people and things in ever expanding ways. Weve gone from connecting rides on 4 wheels to 2 wheels to 18-wheel freight deliveries. From takeout meals to daily essentials to prescription drugs to just about anything you need at any time and earning your way. From drivers with background checks to real-time verification, safety is a top priority every single day. At Uber, the pursuit of reimagination is never finished, never stops, and is always just beginning.

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