Machine Learning Engineer
Job in
Edina, Hennepin County, Minnesota, USA
Listed on 2026-03-01
Listing for:
Intuitive Technology Group - Transforming Tomorrow
Full Time
position Listed on 2026-03-01
Job specializations:
-
IT/Tech
Data Engineer, Machine Learning/ ML Engineer, AI Engineer, Cloud Computing
Job Description & How to Apply Below
We’re partnering with an innovative organization in the south metro of the Twin Cities seeking a Machine Learning Engineer to help advance and scale their machine learning capabilities within a Snowflake-driven data ecosystem.
This is a high-impact role for someone who thrives at the intersection of architecture, production ML, and MLOps strategy. You’ll play a key role in shaping how models move from experimentation to secure, scalable, enterprise-grade solutions.
Key Responsibilities
- Lead the design, engineering, and productionization of machine learning solutions.
- Architect scalable ML pipelines leveraging Snowflake as the core data foundation.
- Partner closely with data scientists to operationalize models with rigor, reliability, and long-term supportability.
- Strengthen and mature MLOps practices, CI/CD pipelines, monitoring frameworks, and model governance.
- Optimize model performance, scalability, and cost efficiency across cloud-based ML environments.
- Provide senior-level technical leadership and influence platform decisions.
- Ensure security, compliance, and data governance best practices are embedded in ML workflows.
- Identify opportunities to modernize tooling and improve ML lifecycle management.
- Contribute to a collaborative, cross-functional engineering culture.
Required Experience
Technical
- 6+ years of experience in machine learning engineering, data engineering, or related roles.
- Advanced proficiency in SQL (Snowflake experience strongly preferred).
- Experience building and scaling ML pipelines in cloud-based ecosystems.
- Experience working within Snowflake data environments.
- Azure ML or other ML platform experience a plus.
- Deep understanding of CI/CD, version control (Git), and production deployment best practices.
- Experience with model monitoring, retraining strategies, and ML lifecycle management.
Professional
- Proven ability to influence technical direction and architecture decisions.
- Strong systems-thinking mindset.
- Excellent communication skills — able to bridge data science and engineering teams.
- High ownership mentality with a proactive approach.
- Collaborative leader who elevates the broader team.
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