ML Engineer
Job in
Auburn Hills, Oakland County, Michigan, 48326, USA
Listed on 2026-02-28
Listing for:
Mondo
Contract
position Listed on 2026-02-28
Job specializations:
-
Software Development
AI Engineer, Data Engineer, Machine Learning/ ML Engineer
Job Description & How to Apply Below
Job 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 Dev Ops 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, Dynamo
DB, Cloud Trail). - Experience with AWS Sage Maker 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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