Sr. Software Engineer

Cleerly
Remote

About The Position

We're seeking a Senior Software Engineer to drive key technical initiatives across our computational imaging pipeline. In this high-impact role, you'll own the complex systems responsible for deploying, scaling, and monitoring our regulated AI algorithms end-to-end. You will influence the architecture of our system, ensuring our solutions meet medical standards for quality and performance, while mentoring other engineers and helping shape our technical culture.

Requirements

  • Bachelor’s or Master’s degree in Computer Science, Software Engineering, or related field (or equivalent experience).
  • 8–12 years of software engineering experience, with expertise in AI production systems (Python, PyTorch) and data services (SQL, Postgres, NoSQL, Redis or similar).
  • Demonstrable capability in designing, implementing, and securing RESTful web services
  • Experience in MLOps orchestration and cloud deployment (Docker, Kubernetes).
  • Experience with AWS, GitHub, and continuous integration pipelines
  • Proven track record of architecting and delivering scalable systems in production environments.
  • Experience mentoring engineers and raising the technical bar through reviews and design feedback.
  • Strong systems thinking with the ability to evaluate tradeoffs in scalability, reliability, and maintainability.
  • Experience designing for observability and operational excellence (e.g., logs, alerts, dashboards, runbooks).
  • Comfortable operating in ambiguity and driving clarity across product, engineering, and business stakeholders.

Nice To Haves

  • Experience designing and optimizing end-to-end medical imaging pipelines in a production environment and familiarity with HIPAA/HITRUST security requirements.
  • Hands-on experience with Computer Vision and Deep Learning techniques used for medical image processing.

Responsibilities

  • Design, build, and deploy scalable AI services and computational imaging pipelines to production, ensuring robust, high-availability infrastructure for our machine learning algorithms.
  • Design extensible system architectures and make pragmatic trade-offs that balance performance, security, and maintainability.
  • Own full lifecycle delivery of complex features, from architectural planning and API design to implementation and post-release observability.
  • Ensure high availability and observability of our services; improve alerting, logging, and incident response across the stack.
  • Set and uphold strong engineering standards via code reviews, technical mentorship, and design documentation.
  • Lead technical design reviews and system decomposition efforts across teams.
  • Proactively identify risks and gaps in operational or architectural resilience, and drive durable improvements.
  • Collaborate closely across AI and engineering to reduce knowledge silos and ensure continuity in critical systems through cross-training and documentation.
  • Design and implement robust testing mechanism and validation strategies to ensure compliance with our Quality Management System and regulatory standards
  • Contribute to the necessary technical documentation required for regulatory submissions.
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