AI Squared
Machine Learning Engineer
Washington, DC
Sponsorship not specifiedDetected 238 days ago
PythonAWSGCPAzureCloud PlatformsDockerKubernetesCI/CDMachine LearningPyTorchLLMsMLOpsResearchCommunicationCollaborationProblem Solving
About the role
- We are seeking a highly skilled Machine Learning Engineer to join our core AI team.
- In this role, you will focus on deploying, maintaining, and monitoring the AI/ML systems that power our platform.
- You will work closely with data scientists, data engineers, and product teams to ensure scalable, reliable, and production-grade AI solutions.
Responsibilities
- Design, implement, and maintain ML deployment pipelines for scalable production systems.
- Build robust model monitoring, logging, and alerting systems to track performance and detect drift.
- Partner with data scientists to transition models from research/prototype into production-ready deployments.
- Develop CI/CD pipelines for ML workflows, integrating testing, validation, and automated deployment.
- Optimize runtime performance of ML models across cloud platforms (AWS, GCP, Azure) and distributed systems.
- Collaborate with cross-functional teams to ensure ML systems align with platform goals and business requirements.
Requirements
- Hands-on experience with ML lifecycle tooling (MLflow, Kubeflow, SageMaker, Vertex AI, or similar).
- Strong proficiency in Python
- familiarity with ML frameworks such as PyTorch or TensorFlow.
- Deep knowledge of containerization (Docker) and orchestration (Kubernetes) for production ML systems.
- Expertise with cloud platforms (AWS, GCP, Azure) for ML deployment and scaling.
- Strong understanding of MLOps best practices, monitoring, and automation.
- 5+ years of experience as a Machine Learning Engineer, MLOps Engineer, or similar role.
- Proven experience deploying and maintaining machine learning models in production at scale.
- Excellent problem-solving skills, with an emphasis on building reliable, scalable systems.
- Strong communication and collaboration skills across technical and non-technical teams.
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