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Machine Learning Engineer

Virtusa
Posted 6 months ago, valid for 13 days
Location

Minneapolis, MN 55487, US

Salary

Competitive

Contract type

Full Time

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Sonic Summary

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  • The role involves building, training, and tuning machine learning models while translating data science experiments into scalable, production-ready solutions.
  • Candidates should have 5+ years of software engineering experience, with at least 2 years focused on shipping ML models to production.
  • Strong Python skills and familiarity with ML frameworks like TensorFlow or PyTorch are required, along with experience in containers and orchestration tools such as Docker and Kubernetes.
  • The position offers a salary of $120,000 to $150,000 per year, depending on experience and qualifications.
  • A solid understanding of ML system design and CI/CD practices applied to ML workloads is essential for this role.

Role Summary:-


Builds, trains and tunes machine learning models. Translates data science experiments into scalable, production-ready ML solutions.


Ker Responsibilities âž–

- Translate data science prototypes into production-grade ML services and pipelines.

- Build training and inference code with reproducibility, versioning, and automated testing.

- Implement scalable model serving (online/offline), batching, and latency/throughput optimization.

- Integrate model lifecycle tooling (tracking, registry, deployment automation, monitoring).

- Collaborate with Data Engineering on feature pipelines and data contracts.

- Own production health: drift detection, performance regression, rollback strategies, and incident response.


Required Qualification:-

- 5+ years software engineering with 2+ years shipping ML models to production.

- Strong Python skills and experience with ML frameworks (TensorFlow/PyTorch).

- Experience with containers and orchestration (Docker/Kubernetes) and API development.

- Understanding of ML system design (data leakage, training-serving skew, drift).

- CI/CD and DevOps practices applied to ML workloads (MLOps).


Nice to have:-

- Experience with feature stores, model registries, and model monitoring stacks.

- GPU optimization and distributed training experience.

- Experience with responsible AI toolkits and compliance requirements.


 




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