Data Quality Analyst- Autonomous Vehicles

Posted 10 Days Ago
Austin, TX, USA
In-Office
Entry level
Information Technology • Robotics
Let us do the driving
The Role
Analyzes autonomous-vehicle data and driving scenarios to validate dataset quality, identify edge cases and coverage gaps, monitor quality metrics, and investigate anomalies. Reviews annotation batches, maintains dashboards and reports, and automates validation and testing workflows using Python, Pandas, and ClickHouse. Collaborates with product and engineering teams to improve annotation efficiency, testing processes, and data quality.
Summary Generated by Built In
About the Role

Our autonomous vehicles encounter a wide variety of real-world situations on city streets. These situations need to be identified, categorized, and described in a structured way so they can be analyzed and used to evaluate the quality of our technology.

We are looking for a Data Quality Analyst who will help us validate and analyze real-world data related to the situations our autonomous vehicles encounter every day. In this role, you will work closely with production, develop quality metrics, and ensure consistent dataset quality across multiple annotation workflows.

You will be involved in the analysis and validation cycle: understanding test cases, working with collected data, validating its quality and completeness, analyzing results, identifying behavioral issues and coverage gaps, and determining where additional testing or investigation may be needed.

This is a data-focused role. You will work primarily with already collected data, test results, and driving scenarios, using analytical tools to understand vehicle behavior and support the testing and engineering teams.

This position is ideal for someone who is detail-oriented, comfortable working with complex datasets, and motivated to enhance data quality and annotation efficiency through analytical and technical approaches.

What You'll Do

Data Analytics

  • Analyze collected data across different road scenarios;
  • Analyze individual samples of data in detail to understand what happened and which factors may have affected situation;
  • Identify edge cases and scenarios that require additional investigation;
  • Monitor quality metrics on a regular basis and investigate anomalies;
  • Analyze dataset balance and completeness across locations, scenarios, and labels;
  • Assess how new scenes contribute not just more data, but better data.

Operational Routine & Controls

  • Regularly reviewing annotation batches (including repetitive checks) to make sure they meet quality and coverage expectations;
  • Maintain simple control dashboards and reports, update them on a weekly basis, and follow up on issues;
  • Take care of many small but important operational tasks that keep the annotation process stable and predictable.

Support & Automation

  • Use Python and ClickHouse for analysis, monitoring, and process support;
  • Work closely with product and engineering teams to implement improvements;
  • Automate data validation, test-result processing, coverage analysis, and repetitive investigation workflows.
What You’ll Need
  • A degree in a relevant field (Computer Science, Quality assurance, Data Analytics, Engineering, or another technical discipline);
  • Strong analytical thinking and attention to detail — you’ll frequently review data, spot anomalies, and work through repetitive validation tasks;
  • Practical Python skills for data processing and analysis (Pandas);
  • Ability to query databases and work with analytical data stacks;
  • Readiness to handle routine and sometimes monotonous work — dataset checks, manual validations, and weekly quality reviews are a core part of the role;
  • A process-oriented mindset: ability to follow existing workflows, maintain consistency, and keep documentation and reports up to date;
  • A valid driver's license and practical driving experience.
Nice to Have
  • Experience with ClickHouse
  • Experience with QA, testing, or validation workflows;
  • Strong systems thinking, attention to quality, and a proactive mindset.
  • Experience using semi-automated labeling tools or active learning methods.

#LS-MS1

Candidates are required to be authorized to work in the U.S. The employer is not offering relocation, sponsorship, and remote work options are not available.

Avride is an equal opportunity employer and committed to providing reasonable accommodations to qualified applicants and employees with disabilities to ensure they have equal access to employment opportunities. Avride complies with the Americans with Disabilities Act (ADA), if you need a reasonable accommodation to assist with the application or hiring process, or to perform the essential functions of a job, please email [email protected].

Skills Required

  • Degree in Computer Science, Quality Assurance, Data Analytics, Engineering, or another relevant technical discipline
  • Strong analytical thinking and attention to detail
  • Practical Python skills for data processing and analysis, including Pandas
  • Ability to query databases and work with analytical data stacks
  • Willingness to perform routine, repetitive dataset checks, manual validations, and weekly quality reviews
  • Process-oriented mindset with ability to follow workflows and maintain documentation and reports
  • Valid driver's license and practical driving experience
  • Experience with ClickHouse
  • Experience with QA, testing, or validation workflows
  • Experience using semi-automated labeling tools or active learning methods
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The Company
HQ: Austin, TX
236 Employees
Year Founded: 2020

What We Do

Avride is a leading developer in the autonomous vehicle and delivery robot industry. Our dynamic team, composed of a few hundred engineers develops and operates autonomous cars and delivery robots across the globe, shaping the future of mobility and logistics. At Avride, we are committed to making the roads safer and more accessible for everyone. At the core of our philosophy is the belief in the transformative power of technology. Every product we develop, every test we conduct, and every service we launch is anchored in our vision of creating a safer and more sustainable world with help of cutting-edge technologies and breakthrough solutions

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