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  3. Cloud Platform - Data Engineer

Cloud Platform - Data Engineer

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Lab37 logo

Cloud Platform - Data Engineer

Lab37

130,000–164,500 / Year

Location

Warrendale, PA

Experience

Mid

Posted

Jul 18, 2026

Apply by

August 17, 2026

Applicants

0

Early applicantEasy applyFull-timeWork from Office

Sign in to apply on web or download the app for more options.

Job Description

Who we are [Lab37 Robotics](https://www.lab37.us/), is a technology company focused on the development and deployment of robots designed specifically for direct-to-customer food production. Our mission is to revolutionize the food industry by creating innovative robotic solutions that enhance efficiency, quality, and customer satisfaction. We are passionate about pushing the boundaries of technology to deliver cutting-edge products that meet the evolving needs of our clients. What you'll do Take on ownership of the data and ML platform layer that powers Lab37's robotics fleet. This spans building ETL pipelines that turn raw robot telemetry into actionable analytics, managing the ML training infrastructure that produces the computer vision models running on our robots, and ensuring the observability and reliability of the entire data stack. Work with a small, high-impact platform team to build the systems that every product team at Lab37 consumes — from data scientists training models, to kitchen operations teams viewing dashboards, to engineers deploying new ML models to robots in the field. Responsibilities - Build and maintain ETL pipelines that ingest, validate, transform, and load robot telemetry data into BigQuery for analytics and ML training - Manage ML training infrastructure using Argo Workflows on Kubernetes — from data extraction through model training, evaluation, and registration - Design and maintain data quality checks and observability dashboards (the "glass panel" for data pipeline health) - Own the data warehouse layer — schema design, incremental loading, dbt transforms, and BigQuery/Athena query optimization - Build dashboard infrastructure (Superset, Grafana) that kitchen operations and leadership teams rely on for real-time insights - Collaborate with data scientists to productionize model training pipelines — from notebook experiments to reproducible, automated workflows - Contribute to infrastructure-as-code (Terraform) and CI/CD pipelines for data and ML workloads - Participate in on-call rotations for data pipeline reliability ## What we're looking for - 2+ years in data engineering, ML infrastructure, or analytics engineering - Strong experience with workflow orchestration tools (Argo Workflows, Airflow, Prefect, or similar) - Python data stack proficiency — pandas, SQL, dbt, and comfort writing production-quality data pipelines - Experience with cloud data services (BigQuery, Athena, S3, or GCP equivalents) - Experience building or maintaining ML training pipelines (not just using them as a consumer) - Docker containerization and Kubernetes basics - SQL fluency — you'll write complex queries daily and care about query performance - Familiarity with documentation tools and writing design documents Desirable Skills - ETL debugging, data quality frameworks, and anomaly detection - Experience with hybrid cloud environments (AWS + GCP) - Robotics or IoT data experience — understanding the challenges of real-world sensor data - Experience with dbt for data transformations and warehouse modeling Why join us - Demand for online food delivery is growing really fast! In the last 5 years, just in the US, the overall market has expanded 10X from $10B to $100B, and could expand to $500bn- $1T by 2030. - Changing the restaurant industry: You’ll be part of a team that helps restaurants succeed in online food delivery. - Collaborative environment: You will receive support and guidance from experienced colleagues and managers, helping you to learn, grow and achieve your goals, and you’ll work closely with other teams to ensure our customer’s success. What else you need to know This role is based in our Warrendale office. As a company driven by invention and continuous change - we are constantly reimagining our industries, building new products, and refining how we operate. We do our best work together. That’s why all of our office-based teams work onsite, five days a week. The base salary range for this role is $130,000 - $164,500 per year. Actual compensation will be determined on an individual basis and may vary depending on experience, skills, and qualifications. Base salary is just one part of your total rewards package. You may also be eligible for equity awards and an annual performance-based bonus. Benefits Summary (USA Full-Time Exempt Employees): - Medical, dental, and vision insurance (multiple plans, incl. HSA options). - Company-paid life and disability insurance (short- and long-term). - Voluntary insurance: accident, critical illness, hospital indemnity. - Optional supplemental life insurance for self, spouse, and children. - Pet insurance discount. - 401(k). - Health Savings Account (HSA) - Flexible Spending Accounts (Healthcare, Dependent Care, Commuter) - Time Off policies: - Discretionary vacation days - 8 paid holidays per year - Paid sick time - Paid Bereavement leave - Paid Parental Leave Benefits are subject to change at the company's discretion. Atoms accepts applications on an ongoing basis. Ready to join us as we serve those who serve others? #LI-Onsite

Key Responsibilities

  • Build and maintain ETL pipelines to ingest, validate, transform, and load robot telemetry data into BigQuery.
  • Manage ML training infrastructure using Argo Workflows on Kubernetes for data extraction through model registration.
  • Design and maintain data quality checks and observability dashboards for data pipeline health.
  • Own the data warehouse layer including schema design, incremental loading, dbt transforms, and query optimization.
  • Build dashboard infrastructure using Superset and Grafana for real-time insights.
  • Collaborate with data scientists to productionize model training pipelines from notebooks to automated workflows.
  • Contribute to infrastructure-as-code using Terraform and CI/CD pipelines for data and ML workloads.
  • Participate in on-call rotations for data pipeline reliability.

Skills Required

PythonpandasSQLdbtBigQueryAthenaS3KubernetesArgo WorkflowsAirflowPrefectDockerTerraformSupersetGrafanaCollaborationProblem solvingDocumentationAWSGCPHybrid CloudRobotics DataIoT DataAnomaly DetectionData Quality Frameworks

Benefits

  • Medical, dental, and vision insurance
  • Company-paid life and disability insurance
  • Voluntary insurance options
  • Pet insurance discount
  • 401(k)
  • Health Savings Account (HSA)
  • Flexible Spending Accounts
  • Discretionary vacation days
  • 8 paid holidays per year
  • Paid sick time
  • Paid Bereavement leave
  • Paid Parental Leave
  • Equity awards
  • Annual performance-based bonus

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Job Overview

Salary

130,000–164,500 / Year

Currency: USD

Job Type

Full-time

Experience

Mid

Location

Warrendale, PA

Application Deadline

August 17, 2026

Total Applicants

0

About Lab37

Lab37 logo

Lab37 is a leading company in the Technology sector, known for innovation and employee-centric culture.

View Company

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