Why This Role Stands Out
You will design and build secure, scalable machine learning platforms at a renowned institution, impacting critical national security, space, and health missions while advancing your MLOps expertise. This hybrid role is perfect for a mid-senior engineer who thrives on solving complex challenges and collaborating within a mission-driven team, offering significant opportunities for professional growth. Apply now to contribute to groundbreaking research and expand your technical capabilities.
Quick Overview
Job Description
Johns Hopkins Applied Physics Laboratory (APL) seeks an AI/ML Platform Engineer to design, build, and operate secure, scalable machine learning platforms that power mission-critical research in national security, space, and health. You will create cloud-native and on-prem MLOps pipelines, automate infrastructure, and productionize models in partnership with data scientists and researchers. In APL's collaborative, mission-driven environment, you'll solve complex real-world problems while advancing your skills through research, advanced degrees, and professional development.
Responsibilities
- Design, build, and maintain scalable AI/ML platforms to support research and mission applications
- Develop CI/CD and MLOps pipelines for model training, evaluation, and deployment
- Implement observability, monitoring, and reliability practices for ML services
- Collaborate with data scientists and engineers to productionize models and workflows
- Optimize compute, storage, and data pipelines for performance and cost efficiency
- Ensure security, compliance, and governance of AI/ML environments and data
- Automate environment provisioning using infrastructure-as-code tools
- Contribute to technical roadmaps, architecture decisions, and platform standards
Required Skills
- Machine learning platforms (Kubeflow, MLflow, Sage
- Maker, Vertex AI, or similar)
- MLOps and CI/CD for ML (Git
- Lab CI, Git
- Hub Actions, Jenkins, or similar)
- Python for data/ML engineering
- Containerization and orchestration (Docker, Kubernetes)
- Cloud computing (AWS, Azure, or GCP)
- Infrastructure as code (Terraform, Cloud
- Formation, or similar)
- Data pipelines and ETL (Spark, Airflow, or similar)
- Monitoring and observability (Prometheus, Grafana, Cloud
- Watch, etc.)
- Linux systems and shell scripting
- Security, compliance, and access control for data and ML systems
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