What the Candidate Will Need / Bonus Points
---- What the Candidate Will Do ----
Refine ambiguous questions and generate new hypotheses and design ML based solutions that benefit product through a deep understanding of the data, our customers, and our business
Deliver end-to-end solutions rather than algorithms, working closely with the engineers on the team to productionize, scale, and deploy models world-wide.
Use statistical techniques to measure success, develop northstar metrics and KPIs to help provide a more rigorous data-driven approach in close partnership with Product and other subject areas such as engineering, operations and marketing
Design experiments and interpret the results to draw detailed and impactful conclusions.
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Collaborate with data scientists and engineers to build and improve on the availability, integrity, accuracy, and reliability of data logging and data pipelines.
Develop data-driven business insights and work with cross-functional partners to find opportunities and recommend prioritisation of product, growth, and optimisation initiatives.
Present findings to senior leadership to drive business decisions
---- Basic Qualifications ----
Undergraduate and/or graduate degree in Math, Economics, Statistics, Engineering, Computer Science, or other quantitative fields.
4+ years experience as a Data Scientist, Machine learning engineer, or other types of data science-focused functions
Knowledge of underlying mathematical foundations of machine learning, statistics, optimization, economics, and analytics
Hands-on experience building and deployment ML models
Ability to use a language like Python or R to work efficiently at scale with large data sets
Significant experience in setting up and evaluation of complex experiments
Experience with exploratory data analysis, statistical analysis and testing, and model development
Knowledge in modern machine learning techniques applicable to marketplace, platforms
Proficiency in technologies in one or more of the following: SQL, Spark, Hadoop
---- Preferred Qualifications ----
Advanced SQL expertise
Proven track record to wrangle large datasets, extract insights from data, and summarise learnings/takeaways.
Proven aptitude toward Data Storytelling and Root Cause Analysis using data
Advanced understanding of statistics, causal inference, and machine learning
Experience designing and analyzing large scale online experiments
Ability to deliver on tight timelines and prioritise multiple tasks while maintaining quality and detail
Ability to work in a self-guided manner
Ability to mentor, coach and develop junior team members
Superb communication and organisation skills
We welcome people from all backgrounds who seek the opportunity to help build a future where everyone and everything can move independently. If you have the curiosity, passion, and collaborative spirit, work with us, and let's move the world forward, together.
Offices continue to be central to collaboration and Uber's cultural identity. Unless formally approved to work fully remotely, Uber expects employees to spend at least half of their work time in their assigned office. For certain roles, such as those based at green-light hubs, employees are expected to be in-office for 100% of their time. Please speak with your recruiter to better understand in-office expectations for this role.
*Accommodations may be available based on religious and/or medical conditions, or as required by applicable law. To request an accommodation, please reach out to accommodations@uber.com.