Develop and productionize ML models and pipelines for analytics, recommendation, and intelligent automation. Build and maintain model-serving infrastructures with containerization. Optimize model architecture and inference to achieve operational SLAs.
Key Highlights
Key Responsibilities
Technical Skills Required
Benefits & Perks
Job Description
Primary title: Senior Machine Learning Engineer
Operating in the AI-driven SaaS / Enterprise ML sector, this remote role develops production-grade machine learning systems that power analytics, recommendation, and intelligent automation for U.S. customers. You will work end-to-end on model development, deployment, and observability to deliver scalable, low-latency ML services.
Role & Responsibilities
- Design, implement, and productionize ML models and pipelines for supervised and unsupervised tasks, ensuring reproducible training and predictable inference behavior.
- Build and maintain model-serving infrastructures (REST/gRPC) with containerization to meet latency, throughput, and cost targets in cloud environments.
- Develop CI/CD, automated retraining, canary/A-B rollout strategies, and monitoring for model performance, drift detection, and data quality.
- Optimize model architecture and inference (quantization, batching, sharding) to achieve operational SLAs and efficient resource utilization.
- Collaborate closely with Data Scientists, Product, and Platform teams to translate ML prototypes into reliable microservices and data pipelines.
- Document architectures, establish engineering best practices for reproducibility, observability, and security, and mentor junior engineers.
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- Must-Have
- Python
- PyTorch
- TensorFlow
- scikit-learn
- SQL
- Docker
- AWS
- MLOps
- Preferred
- Hugging Face Transformers
- Kubernetes
- MLflow
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- Fully remote U.S. role with flexible schedules and asynchronous collaboration.
- Fast-paced, product-focused engineering culture that values ownership, measurable impact, and continuous learning.
- Competitive compensation, professional development support, and opportunities to influence ML platform design.
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