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Senior Software Engineer, Model Lifecycle

📅 Feb 14
C++PythonML Data EngineeringData Pipelines

📜 Description

  • Design, build, and maintain scalable data pipelines to process petabytes of complex sensor data for model training and evaluation.
  • Develop infrastructure for reliable, high-quality datasets for various ML models, including real-time and large-scale offboard models.
  • Create an automated, unified data flywheel connecting data curation to model training.
  • Ensure robust, efficient, and reproducible model development lifecycle through infrastructure for Perception-wide model training.
  • Maintain critical data generation infrastructure and automate data quality checks to ensure dataset integrity.

🛠️ Requirements

  • Outstanding programming skills in C++ or Python.
  • Experience in ML data engineering, including data pipelines and data curation.
  • Familiarity with the ML development lifecycle: data engineering, model training, evaluation, and deployment.
  • BS/MS with 5+ years of industry experience, or PhD with 2 years of industry experience.
  • Passionate about data-centric AI and autonomous driving applications.
  • Experience in cross-functional collaboration and building large-scale data processing systems.

Benefits

  • 401(k) with company match • Paid Time Off: 20 days of vacation per year, accruing at a rate of 6.15 hours per pay period for the first five
Full job description

Waymo is an autonomous driving technology company with the mission to be the world's most trusted driver. Since its start as the Google Self-Driving Car Project in 2009, Waymo has focused on building the Waymo Driver—The World's Most Experienced Driver™—to improve access to mobility while saving thousands of lives now lost to traffic crashes. The Waymo Driver powers Waymo’s fully autonomous ride-hail service and can also be applied to a range of vehicle platforms and product use cases. The Waymo Driver has provided over ten million rider-only trips, enabled by its experience autonomously driving over 100 million miles on public roads and tens of billions in simulation across 15+ U.S. states.

The core challenge within Model Lifecycle is accelerating Waymo's ML development cycle. As we scale to new cities and vehicle platforms, our data volume is exploding, and our models are becoming more complex, handling more and more tasks. This team is critical to controlling that complexity.

In this hybrid role, you will report to an engineering manager.

You will:

  • Design, build, and maintain scalable data pipelines to process many petabytes of complex sensor data, making it ready for efficient model training and evaluation.
  • Develop infrastructure to produce reliable, high-quality datasets for a wide range of ML models, from real-time on-car models to large-scale offboard foundation models.
  • Build towards an automated, unified data flywheel -- a datagen and ingestion solution that seamlessly connects data curation to model training.
  • Develop infrastructure for Perception-wide model training and release-ready packaging, ensuring the model development lifecycle is robust, efficient, and reproducible.
  • Maintain and support critical data generation infrastructure and data refreshes for the Perception team.
  • Automate data quality and validation checks to ensure the integrity, consistency, and trustworthiness of our datasets as we scale to new cities and vehicle platforms
  • Collaborate closely with ML engineers, research scientists, and core infrastructure teams to understand user needs and deliver impactful ML workflows.

You have:

  • Outstanding programming skills in C++ or Python
  • Experience in ML data engineering, including data pipelines, data curation, data balancing, etc.
  • Experience with the ML development lifecycle, including data engineering, model training, model evaluation, and model deployment.
  • BS/MS and 5+ years of industry experience, or PhD + 2 years of industry experience
  • Passionate about data-centric AI and autonomous driving applications

We prefer:

  • Experience in working in cross-functional settings to support data users and collaborating with infrastructure stakeholders; customer-oriented mindset
  • Hands-on experience in building large scale data processing or retrieval systems and pipelines: Apache Spark, Apache Beam, Google Cloud Dataflow, AWS Data Pipeline, Faiss/ScaNN, etc.
  • Experience building automated ML pipelines -- data pipelines, continuous model training/evaluation pipelines, etc.

In accordance with Washington state law, we are highlighting our comprehensive benefits package, which is available to all eligible US based employees. Benefits for this role include:

  • Health, dental, vision, life, disability insurance
  • Retirement Benefits: 401(k) with company match
  • Paid Time Off: 20 days of vacation per year, accruing at a rate of 6.15 hours per pay period for the first five years of employment
  • Sick Time: 40 hours/year (statutory, where applicable); 5 days/event (discretionary)
  • Maternity Leave (Short-Term Disability + Baby Bonding): 28-30 weeks
  • Baby Bonding Leave: 18 weeks
  • Holidays: 13 paid days per year

The expected base salary range for this full-time position across US locations is listed below. Actual starting pay will be based on job-related factors, including exact work location, experience, relevant training and education, and skill level. Your recruiter can share more about the specific salary range for the role location or, if the role can be performed remote, the specific salary range for your preferred location, during the hiring process.

Waymo employees are also eligible to participate in Waymo’s discretionary annual bonus program, equity incentive plan, and generous Company benefits program, subject to eligibility requirements.

Salary Range
$204,000-$259,000 USD
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