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About the role
Key Competencies Technical 5+ years of hands-on AI/ML engineering experience, including modern deep learning, LLMs, transformers, vector stores, retrieval techniques, and model evaluation. Strong Python engineering skills and experience with core AI frameworks such as PyTorch, TensorFlow/Keras, and GenAI stacks like LangChain, LangGraph, LlamaIndex, and OpenAI/Azure/AWS SDKs. Proven ability to evaluate build vs buy vs adapt decisions based on cost, effort, risk, and long-term maintainability. Cloud-native AI development, preferably on AWS (SageMaker, Bedrock), with experience building scalable, secure, and compliant production systems. Demonstrated experience with production-grade GenAI systems, including RAG pipelines, hybrid search, embedding strategies, and agentic workflows. Strong MLOps background: CI/CD, model deployment, monitoring/observability, IaC, and workflow orchestration using tools like Prefect and Weights & Biases, or equivalents. Experience with vector databases, scalable retrieval architectures, guardrailing LLMs and prompt engineering. Familiarity with modern AI system design, including API serving, containerization (Docker), and distributed compute. Leadership & Collaboration Experience working in Agile environments, including running or contributing to Scrum ceremonies, breaking down work into increments, and collaborating closely with TPM and EM in iterative delivery. Ability to lead a team through ambiguity and early-stage environments. Proactive style and strong ability for systematic problem solving. Excellent communication capabilities across global departments. Critical thinking in uncertain or rapidly evolving contexts.
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