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Member of Technical Staff, Machine Learning

Recruitment Consultant
Henry Paget
Posted
22 days ago

Member of Technical Staff, Machine Learning

As a Member of Technical Staff, Machine Learning, you will build core ML components. You will work on real production systems from day one, learning how large-scale ML behaves outside of research settings.

This role is for engineers who want to develop strong systems judgment by shipping, debugging, and iterating on real-world ML.

 

Focus

  • Build and improve ML components across data, training, evaluation, and inference.

  • Fine-tune and adapt models as part of larger production systems.

  • Implement evaluation and testing to understand model behavior.

  • Help build and maintain data pipelines for real-world and synthetic data.

  • Debug model issues, performance problems, and production incidents.

  • Ship improvements iteratively and learn from real user feedback.

  • Work closely with senior ML engineers and product teams.

  • Work under real production constraints: latency, cost, reliability, and safety

 

Tech Stack

  • Python

  • PyTorch / JAX

  • Production ML systems running on GPUs

 

Ideal Experience

  • Strong foundations in machine learning and modern neural architectures.

  • Some hands-on experience training, fine-tuning, or deploying ML models.

  • Comfortable writing production-quality code and learning new tools quickly.

  • Curious, coachable, and eager to learn from real systems in production.

  • Able to work through ambiguity with guidance and grow ownership over time.

  • Bias toward shipping, iteration, and continuous improvement.

 

Outcomes

  • ML models in production meet expected accuracy, latency, and reliability targets.

  • Production issues are identified quickly, debugged effectively, and root causes addressed.

  • Data pipelines, training loops, and inference systems are robust, reproducible, and maintainable.

  • Collaborates effectively with engineers, product, and research teams to deliver reliable ML-powered features.

  • Iterations on models and systems are driven by real-world signals and measurable improvements.

 

 

Industry
Contract Type
Permanent
Location
United States
City
San Francisco
Work Model
remote

Apply Now

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