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Machine Learning Engineer

San Francisco, California, United StatesOnsiteFull Time$180,000–$230,000 /yrPosted 2 months ago

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Role summary

We are seeking a Machine Learning Engineer to build and deploy production-grade AI systems. This role involves taking models from research to real-world applications, designing, optimizing, and scaling systems for critical enterprise workflows. You will collaborate closely with research, product, and engineering teams to transform cutting-edge capabilities into reliable, high-performance production systems. Key responsibilities include model development and deployment, designing scalable MLOps pipelines, optimizing system performance, working with large datasets and APIs, and implementing robust evaluation and monitoring frameworks.

## Job Description

We’re looking for a Machine Learning Engineer to build and deploy production-grade AI systems. In this role, you’ll take models from research to real-world applications, designing, optimizing, and scaling systems that power critical workflows across the enterprise.

You’ll work closely with research, product, and engineering teams to turn cutting-edge capabilities into reliable, high-performance systems in production.

### Key Responsibilities

  • Model Development & Deployment: Build, fine-tune, and deploy machine learning models into production environments
  • Systems Engineering: Design scalable pipelines for training, inference, evaluation, and monitoring
  • Performance Optimization: Improve latency, throughput, cost efficiency, and reliability of ML systems
  • Data & Infrastructure: Work with large-scale datasets and integrate models with internal systems and APIs
  • Cross-Functional Collaboration: Partner with product and engineering teams to deliver end-to-end AI features
  • Evaluation & Monitoring: Implement robust evaluation frameworks, observability, and feedback loops

### Minimum Qualifications

  • Education: Bachelor’s or Master’s in Computer Science, Engineering, or related field (PhD optional, not required)
  • Technical Skills: Strong proficiency in Python and modern ML frameworks (e.g., PyTorch, TensorFlow, JAX)
  • Production Experience: Experience deploying and maintaining ML systems in production environments
  • Systems Knowledge: Familiarity with distributed systems, data pipelines, and cloud infrastructure (e.g., AWS, GCP)
  • Practical ML Expertise: Experience with model training, fine-tuning, evaluation, and iteration at scale

Compensation Range: $180K - $230K

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