Data Engineer

Reposted One Month Ago
New York, NY, USA
Hybrid
Senior level
Robotics
The Role
Design, build, and maintain scalable data ingestion and ETL pipelines across a growing data lake. Define and enforce data quality standards, SLOs, and validation frameworks. Optimize pipelines for performance and cost, expand monitoring and alerting, and enable stakeholders to self-serve on data infrastructure.
Summary Generated by Built In
Join the team bringing advanced autonomy to the built world

At Bedrock, we're moving AI out of the lab and into the real world. Our team includes veterans who helped launch Waymo, scaled Segment to a $3.2B acquisition, and grew Uber Freight to $5B in revenue. Today, we're deploying autonomous systems on heavy construction equipment across the country, improving safety on job sites and accelerating schedules on critical infrastructure projects.
We're not here debating the future of AI. We're deploying it in the real world. In just two years, we've raised $350M and achieved the first fully autonomous excavator deployments in construction.
This is where algorithms meet steel-toed boots. You'll work alongside construction veterans and world-class engineers to solve physical-world problems that simulations can't touch. If you're ready to do meaningful work on hard problems, we'd love to have you join us.

The Role

Our Data Platform is growing fast - more users, more data sources, more pipelines - and the expectations that come with that growth are rising accordingly. We need a Senior Data Engineer who can work across the stack: tighten up our ingestion pipelines, write new ETL pipelines wherever needed, build out monitoring and alerting where we have blind spots, and help internal teams build their own data infrastructure “the right way”. You'll spend real time in the weeds - writing and debugging pipelines, optimizing queries, reviewing what others have built - and you should be comfortable with that.

This is a high-impact role. Our data is increasingly tied to the experiences we deliver to customers, which means data quality, accuracy, and observability are no longer just engineering concerns - they directly affect trust. You'll be at the center of that challenge.

What you’ll do
  • You will design, build, and maintain robust, scalable data pipelines and ingestion workflows across a growing Data Lake;

  • Define and enforce data quality standards, SLOs, and validation frameworks to ensure accuracy and reliability of critical data assets;

  • Continuously optimize existing pipelines for performance and cost efficiency as data volumes scale;

  • Expand and own our monitoring and alerting coverage — surfacing data issues before they become customer-facing problems;

  • Drive best practices around data modeling, partitioning, and compute resource utilization;

  • Also, you get to drive 100,000 lb excavators.

What we’re looking for
  • 5+ years of experience in data engineering, with a strong track record in large-scale data lake or data warehouse environments

  • 5+ years of experience working with SQL and distributed query engines (e.g. Spark, BigQuery, Snowflake, or similar)

  • Deep proficiency with pipeline orchestration tools (e.g. Airflow, Prefect, or equivalent) and transformation frameworks (e.g. Spark)

  • Experience designing and implementing data quality frameworks - validation, anomaly detection, lineage tracking

  • Familiarity with observability tooling for data systems: monitoring, alerting, and incident response for data pipelines

  • Experience enabling non-engineering stakeholders to self-serve on data infrastructure, whether through documentation, tooling, or hands-on enablement

Preferred Qualifications
  • Hands-on experience with Databricks and Spark

  • Experience with streaming or near-real-time ingestion patterns

  • Familiarity with data governance and access control at scale

  • Background working on customer-facing data products or external SLAs

Bedrock Robotics is an Equal Opportunity Employer

We’re committed to building a diverse and inclusive workplace. We consider all qualified applicants for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, ancestry, age, disability, veteran status, genetic information, or any other protected characteristic.

Reasonable Accommodations

We want our hiring process to be accessible to everyone. If you need an accommodation to participate in the application or interview process, please let your recruiter know so we can support you.

Skills Required

  • 5+ years of experience in data engineering in large-scale data lake or data warehouse environments
  • 5+ years working with SQL and distributed query engines (e.g., Spark, BigQuery, Snowflake)
  • Deep proficiency with pipeline orchestration tools (e.g., Airflow, Prefect) and transformation frameworks (e.g., Spark)
  • Experience designing and implementing data quality frameworks (validation, anomaly detection, lineage tracking)
  • Familiarity with observability tooling for data systems: monitoring, alerting, and incident response for data pipelines
  • Experience building, debugging, and optimizing ETL/ingestion pipelines for performance and cost
  • Experience enabling non-engineering stakeholders to self-serve on data infrastructure through documentation, tooling, or enablement
  • Hands-on experience with Databricks and Spark
  • Experience with streaming or near-real-time ingestion patterns
  • Familiarity with data governance and access control at scale
  • Background working on customer-facing data products or external SLAs
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The Company
HQ: San Francisco, CA
56 Employees
Year Founded: 2024

What We Do

Bedrock Robotics brings advanced autonomy to the built world, helping the construction industry build at the pace today's society demands. Our technology upgrades existing heavy equipment, enabling truly autonomous operation with expert level quality and superhuman safety. At a time when we need to build faster than ever—from housing to data centers to factories and energy infrastructure—autonomous construction isn't just an innovation, it's an economic necessity.

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