Machine Learning Engineer
Posted at: 02/19/2026
Cupertino, CA
Onsite - IT - AI / Data Science / Machine Learning - Contract - Job ID: 26-00826
ABOUT THIS FEATURED OPPORTUNITY
Join the AI/ML – Machine Translation team to build scalable ML infrastructure powering large-scale AI systems. We are seeking a Machine Learning Engineer with mid-level ML lifecycle experience and strong distributed data processingskills to design and operate platforms supporting model development from training to production.
OPPORTUNITY FOR YOU
This infrastructure-focused role centers on owning and optimizing mid-level ML lifecycle stages, not research or model fine-tuning. You will build automated ML systems for:
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Data ingestion and preprocessing at scale
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Distributed model training
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Evaluation and deployment workflows
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Monitoring and iteration post-deployment
You will:
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Design and optimize distributed data pipelines for large-scale datasets
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Improve multi-GPU and multi-node training workflows
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Automate ML lifecycle processes to reduce manual effort
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Identify bottlenecks in data processing, training, and deployment
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Ensure systems are scalable, reliable, and production-ready
This role enables researchers to prototype efficiently by building robust distributed infrastructure.
KEY SUCCESS FACTORS
ML Lifecycle & Automation
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3+ years supporting mid-level ML lifecycle stages: data prep, training orchestration, evaluation, deployment, monitoring
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Experience moving models from development to production
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Knowledge of experiment tracking, model versioning, and CI/CD for ML workflows
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Ability to build automated end-to-end ML pipelines
Distributed Systems & Scalability
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Experience with distributed computing systems (Spark, Ray, Dask, etc.)
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Multi-GPU and multi-node training management
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Proven ability to optimize training throughput and large-scale data pipelines
Cloud & Production
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Experience with cloud-based scalable ML platforms (AWS, GCP, Azure)
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Familiarity with containerization and orchestration (Docker, Kubernetes)
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Strong Python skills and CI/CD implementation for ML workflows
Education
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B.S. or M.S. in Computer Science, Machine Learning, Statistics, or related field
NICE TO HAVE
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Experience with LLMs or Neural Machine Translation
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Familiarity with NLP, ASR, PyTorch, TensorFlow, JAX
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Knowledge of transformer architectures and large-scale training environments
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