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Senior Data Scientist - Verification & Validation

Zoox is on an ambitious journey to develop a full-stack autonomous vehicle system for cities. We are seeking a Senior Data Scientist to join a verification and validation team that evaluates safety-critical AI systems. You will jo...

Job Full source details
Zoox (lever) United States Verified 6 hours ago Reference d856c631-446c-452f-81f5-0359b50403c9
✓ 80% verification score · Source: Zoox (lever) · Always confirm final requirements on the original source.
Complete source information imported The available role or programme description, requirements, benefits and source facts were imported from the public official endpoint and formatted for reading.
EmploymentFull-time
Published compensationUSD 209000.00 – 285000.00per-year-salary
CountryUnited States
DepartmentSoftware

Overview

Zoox is on an ambitious journey to develop a full-stack autonomous vehicle system for cities. We are seeking a Senior Data Scientist to join a verification and validation team that evaluates safety-critical AI systems. You will join a team of software and data engineers that leverage methods including log data analysis, simulation, and closed-course structured testing. You'll work cross-functionally with AI software, System Design and Mission Assurance, Simulation, Sensors, and other teams to develop, execute, and iterate on validation methods and pipelines. These pipelines evaluate safety-critical systems, are highly visible, and are an important critical path element of launching our service. The ideal candidate brings a hybrid of statistical rigor and engineering mindset to drive clarity from ambiguity, establish new processes, and propel the team forward. This is a deeply technical a

Full job description

About The Role

Zoox is on an ambitious journey to develop a full-stack autonomous vehicle system for cities. We are seeking a Senior Data Scientist to join a verification and validation team that evaluates safety-critical AI systems. You will join a team of software and data engineers that leverage methods including log data analysis, simulation, and closed-course structured testing. You'll work cross-functionally with AI software, System Design and Mission Assurance, Simulation, Sensors, and other teams to develop, execute, and iterate on validation methods and pipelines. These pipelines evaluate safety-critical systems, are highly visible, and are an important critical path element of launching our service. The ideal candidate brings a hybrid of statistical rigor and engineering mindset to drive clarity from ambiguity, establish new processes, and propel the team forward. This is a deeply technical and hands-on role where you will be expected to be a self-sufficient builder and coder, not just a manager of projects.

In This Role, You Will:

Design Evaluation Frameworks: Architect statistical methodologies for safety-critical AI systems to form objective, rigorous conclusions about their performance and reliability.

Conduct Robust Analysis: Deliver validation evidence to support increasingly complex operations and identify potential edge-case failures.

Inform Strategy: Deliver clear, data-driven insights to development teams to guide system improvement, and to executive leadership to inform milestone-level go/no-go decisions.

Define Metrics: Drive alignment across engineering teams on performance metrics and data extraction strategies.

Lead the Lifecycle: Manage all phases of evaluation including prototyping, requirements capture, design, implementation, and validation.

Scale Pipelines: Partner with engineers to build and maintain scalable data processing and simulation pipelines, applying distributed computing to analyze petabytes of driving data.

Qualifications And Requirements

  • MS or PhD in Statistics, Computer Science, Machine Learning, Applied Mathematics, or related quantitative field

  • Proficiency in Python and SQL with experience in production-quality code

  • Demonstrated expertise in statistical methodologies including hypothesis testing, power analysis, spatiotemporal modeling, Bayesian inference, and multivariate analysis.

  • Experience with large-scale data analysis and statistical modeling

  • Proficiency with Git, unit testing, and collaborative development practices

Bonus Qualifications:

Hands-on experience with production machine learning pipelines: dataset creation, training frameworks, metrics pipelines

Experience with modern data processing technologies such as Apache Spark, Spark SQL, and Databricks

Experience with designing metrics and delivering actionable insights that drive business decisions

Requirements & qualifications

  • MS or PhD in Statistics, Computer Science, Machine Learning, Applied Mathematics, or related quantitative field

  • Proficiency in Python and SQL with experience in production-quality code

  • Demonstrated expertise in statistical methodologies including hypothesis testing, power analysis, spatiotemporal modeling, Bayesian inference, and multivariate analysis.

  • Experience with large-scale data analysis and statistical modeling

  • Proficiency with Git, unit testing, and collaborative development practices

Hands-on experience with production machine learning pipelines: dataset creation, training frameworks, metrics pipelines

Experience with modern data processing technologies such as Apache Spark, Spark SQL, and Databricks

Experience with designing metrics and delivering actionable insights that drive business decisions

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Verification notes

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