Jobs Companies RADAR Machine Learning Engineer

Über diese Machine Learning Engineer Stelle bei RADAR

RADAR · Hybrid · Sunnyvale, CA

ABOUT US

E-commerce got real-time data infrastructure decades ago. Physical stores still have not. RADAR is changing that.

RADAR is building the data infrastructure layer for the physical world, starting with retail. Our hardware-enabled SaaS platform uses proprietary overhead sensors, software, and AI-powered analytics to locate every product in a store, continuously, down to the fixture. We are deployed across 1,400+ stores with retailers including American Eagle Outfitters and Old Navy, processing tens of billions of real-world events every day, delivering 99%+ accuracy in complex, noisy environments - at fleet scale.

RADAR is one of the best-funded companies in retail technology, backed by a recent Series B financing at a $1 billion valuation. Inventory accuracy is only the beginning. We believe RADAR can become foundational infrastructure for the physical economy, powering new AI-driven commerce experiences across retail and beyond.

Join us if you want to work on a large, unsolved, technically challenging problem with an ambitious team building category-defining technology.

OUR VALUES

  • Mission-Driven: We're transforming retail with cutting-edge technology and building something that truly matters.
  • Collaborative Team: We thrive on curiosity, shared goals, and solving complex problems together.
  • High Impact: You’ll make meaningful contributions from day one and help shape the future of our product and company.
  • Clear Communication: We value honesty, humility, and respectful dialogue—everyone’s voice matters.
  • Balanced Lives: We work hard, but not at the expense of well-being. We respect time, boundaries, and life outside of work.
  • Diverse Perspectives: We believe better ideas come from diverse backgrounds, experiences, and viewpoints.
  • Empathy-Driven Design: We build with deep respect for our end users, listening closely to their feedback and needs.

ABOUT THE JOB

We are looking for a Machine Learning Engineer to help build and develop our ML capabilities at RADAR. The role requires extensive collaboration with teams and functions across the company ranging from product and customer success to engineering, data science and research.

This is a hybrid role based in our Sunnyvale, CA location with a flexible hybrid work schedule of 2-3 days in the office. 

Responsibilities:

  • Build and scale ML infrastructure: Design and maintain scalable, reliable and efficient production pipelines for feature engineering, training, prediction and model serving using tools including Airflow, Big Query and Kubeflow
  • Drive model performance: Train, validate and deploy high-quality ML models, applying advanced techniques in feature selection, hyperparameter tuning and model architecture choices to improve the accuracy of our products
  • Accelerate ML development: Optimize feature engineering pipelines for performance and scalability while collaborating with Data Science to research, develop, and deploy new features that improve model accuracy
  • Ensure reliability: Implement comprehensive model monitoring, automated training pipelines, and observability solutions to maintain model health and performance
  • Accelerate ML development: Optimize feature engineering pipelines for performance and scalability while collaborating with Data Science to research, develop, and deploy new features that improve model accuracy
  • Champion best practices: Apply CI/CD principles including automated testing, model validation, and deployment strategies

ABOUT YOU

Required:

  • 5+ years building production ML systems at scale, including feature engineering, training, deployment, and monitoring
  • Strong proficiency in Python and ML frameworks (scikit-learn, PyTorch, XGBoost)
  • Hands-on experience with cloud ML platforms (AWS SageMaker, Vertex AI, or Azure ML)
  • Expertise in big data processing including SQL optimization and distributed computing (Spark/Dask)
  • Production experience with workflow orchestration tools (Airflow, Dagster, Prefect)
  • Proficiency with version control (Git) and CI/CD practices

Preferred:

  • Experience with real-time streaming data (Kafka, Flink, Pub/Sub.)
  • Bachelor's degree in Computer Science, Statistics, or related field 
  • Experience with MLOps tools (MLflow, Weights & Biases, etc.)

At RADAR, your base pay is one part of your total compensation package. The expected base salary range for this position is $195,000 - $264,000. Individual pay is determined by work location and additional factors,  including job-related skills, experience and relevant education or training.You will also be eligible to receive other benefits including: equity, comprehensive medical and dental coverage, life and disability benefits, 401k plan, flexible time off, and paid parental leave. The pay range listed for this position is a good faith and reasonable estimate of the range of possible base compensation at the time of posting. 

Research has shown that women & underrepresented minorities are more likely to read lists of requirements and consider themselves unqualified if they don't meet every single one. This list represents what we're ideally looking for, but everyone has unique strengths & weaknesses, and we hire for strength & potential, not lack of weakness.

Bereit, sich bei RADAR zu bewerben?
Bei RADAR bewerben

Wie sich dieses Gehalt für ML Engineer vergleicht

Diese Stelle zahlt $229,500/yrim Einklang mit der üblichen Spanne für ML Engineer Stellen.

$169,350 dem Median $169,350 $299,900

Übliche Spanne $169,350–$247,100/yr, aus 12 vergleichbaren ML Engineer Anzeigen auf JobsRadar (Vergütung auf USD hochgerechnet). Gehaltseinblicke für ML Engineer ansehen →

Über RADAR

Our team is comprised of talented, passionate, and experienced individuals that have collectively designed and launched 18 satellites, manufactured thousands of RFID readers, and led teams and tech implementations across 1000+ stores. While retail is our initial focus, this application of our technology only scratches the surface of what we aim to accomplish. We’re building new technology from scratch to solve existing and future problems—and we're having a great time doing it. Come join us!

 

For your security, all official Radar recruitment communications will come from an @goradar.com email address and interviews will be scheduled only through verified Radar channels. Please contact recruiting@goradar.com if additional job verification is needed for suspected scams.

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