Lead AI Systems Architect

Expert Technology Services

  • Mountlake Terrace, WA
  • 5 days ago

    Highlights

    Implement advanced LLM (Large Language Model) solutions (e.g., retrieval-augmented generation, structured reasoning), and set team best practices. - Design and implement complex cloud architecture for large-scale AI platforms, including compute, storage, security, deployment, and monitoring.

    Numbers & Facts

    LocationMountlake Terrace, WA

    Description

    Job Summary (List Format):

    - Architect and deliver end-to-end AI systems and frameworks, focusing on balancing speed, reliability, and maintainability.
    - Design and implement complex cloud architecture for large-scale AI platforms, including compute, storage, security, deployment, and monitoring.
    - Assist in building scalable data pipelines to support advanced AI systems and enable continual model lifecycle improvements.
    - Define and develop low-latency APIs/services to operationalize AI models and integrate them into enterprise applications.
    - Develop monitoring and reliability solutions to ensure consistent performance, accuracy, and stability of AI models in production.
    - Participate in agile development practices, ensure peer code reviews, and conduct code reviews for others.
    - Create and maintain thorough documentation in line with team procedures and corporate policies.
    - Build AI solutions using cloud platforms (e.g., Azure AI services), with experience in highly regulated environments preferred.
    - Productionize AI models, including implementation of scalable pipelines and robust monitoring systems.
    - Develop deep learning models using modern frameworks such as TensorFlow, PyTorch, or MLX.
    - Apply software design patterns, microservices, distributed systems, and container orchestration.
    - Implement ethical AI practices, including explainability, fairness, and bias mitigation.
    - Implement advanced LLM (Large Language Model) solutions (e.g., retrieval-augmented generation, structured reasoning), and set team best practices.
    - Debug and optimize AI systems for performance and reliability.
    - Communicate technical concepts and tradeoffs effectively to non-technical stakeholders.
    - Mentor and share knowledge to raise team capability, demonstrating leadership and collaboration skills.
    - Required skills: Azure AI, Python.

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