Sr. Engineer LLMOps & MLOps --REMOTE 100%
Key details
- Work type
- remote
- Employment
- contract
Job Description
Education: Bachelor’s degree in Computer Science or a related field required; Master’s degree in a quantitative discipline highly desirable. • Proven Execution: 6+ years of engineering experience, with a minimum of 3 years strictly focused on MLOps or LLMOps in a production environment. • AWS & Azure Mastery: Deep, hands-on proficiency in both ecosystems.
You must be able to configure Bedrock and Azure OpenAI services, including private networking and endpoint security, on day one. • Technical Stack: Expert Python, SQL, and PySpark.
Extensive experience with containerization (Docker, Kubernetes) and orchestration tools (Airflow, Kubeflow, or Step Functions). • LLM Tooling: Professional experience with evaluation and observability frameworks like LangSmith, Arize Phoenix, or WhyLabs. • Data Science Flavor: A strong understanding of statistical validation, model evaluation metrics, and the ability to partner with Data Scientists to optimize model performance. • Multi-Cloud Pipeline Execution: Build and maintain automated CI/CD and CT (Continuous Training) pipelines across AWS (SageMaker/Bedrock) and Azure (AI Studio). • LLMOps Framework Implementation: Design and execute the infrastructure for Retrieval-Augmented Generation (RAG), including vector database management (OpenSearch, Pinecone, or Azure AI Search) and semantic index optimization.
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Source: Google Jobs • Last updated Apr 9, 2026