Job Details

ML Engineer

  2026-03-03     Mondo Staffing     all cities,AK  
Description:

Apply now: ML Engineer (Staff Level Engineer), location is Hybrid (Auburn, Michigan). The start date is ASAP for this 6-month contract-to-hire position.

Job Title: ML Engineer
Location-Type: Hybrid ( Auburn, Michigan - 3 days onsite)
Start Date Is: ASAP
Duration: 6-Month Contract-to-Hire
Compensation Range: $70/hr - $90/hr (W2)

Job Description:
Lead the design and deployment of scalable, production-grade machine learning systems across IoT-enabled consumer products, owning the full AI lifecycle from data ingestion to production monitoring.

Day-to-Day Responsibilities:

  • Architect and build end-to-end ML pipelines (data ingestion, feature engineering, training, deployment).
  • Develop and deploy production AI/ML models in AWS environments.
  • Partner with product, engineering, and executive stakeholders to translate business needs into ML solutions.
  • Implement MLOps best practices (CI/CD, monitoring, drift detection, model versioning).
  • Work with large, messy, unstructured IoT datasets to drive insights and automation.
  • Mentor engineers and data scientists on AI engineering standards and best practices.
  • Conduct code reviews and ensure production-quality AI systems.
  • Collaborate with DevOps for model deployment and scalability.
  • Must-Haves:
    • 6-8+ years of experience in Machine Learning Engineering.
    • Strong Python development experience.
    • Deep experience with AWS (S3, EC2, Lambda, ECS, DynamoDB, CloudTrail).
    • Experience with AWS SageMaker and/or Amazon Bedrock.
    • Hands-on experience building production-grade ML systems (not just experimentation).
    • Experience designing scalable ML architectures and MLOps frameworks.
    • Background working with IoT, consumer electronics, or high-volume telemetry data.
    • Strong communication skills; ability to work with C-level stakeholders.
  • Nice-to-Haves:
    • Experience in AI enablement for consumer-facing products.
    • Systems engineering or end-to-end architectural background.
    • Experience leveraging open-source ML models.
    • Experience working in Agile/SaFe environments.
    • Interest in pet-tech or connected device ecosystems.


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