USA_Developer
Varite Inc
Minnetonka, MN, United States
6 days ago
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Role details
Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Experienced
Experience required
2 years minimum
Compensation
$110,302.0 - $118,165.0
Working hours
Regular working hours
Job source
Tech stack
Artificial Intelligence
Automation of Tests
Continuous Integration
Information Engineering
Information Leak Prevention
DevOps
Distributed Computing Environment
Python (Programming Language)
Machine Learning
Natural Language Processing
Tensorflow
Azure Machine Learning
+18 more
Software Engineering
Management of Software Versions
Feature Store
Pytorch
Retrieval-Augmented Generation
Large Language Models
Generative AI
Scikit Learn
Kubernetes
Deployment Automation
Data Analytics
Machine Learning Operations
Api Design
Restful APIs
GPT
Docker
Unsupervised Learning
Databricks
Job description
Builds, trains and tunes machine learning models. Translates data science experiments into scalable, production-ready ML solutions. Key Responsibilities: 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.
Requirements
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). Preferred / 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. Core Skills (from POD sheet) Python, TensorFlow, PyTorch, Docker, REST APIs, 3 years of experience applying NLP (transformers| gpt| etc) in a production setting using large amounts of data 2-3 years of experience applying LLMs (RAG| vector db| embeddings) to solve real world problems 2-3 years of experience in Python using common data science libraries such as scikit-learn and Databricks Experience applying data science techniques in a commercial enterprise| including supervised| unsupervised learning| NLP| time-series forecasting and other statistical analyses Experience building APIs for the models Strong written verbal communication skills including the ability to present detailed analyses to a broad audience Organized self-starter| with drive and commitment able to work with little supervision Strong analytical| quantitative| problem-solving| and critical thinking skills Experience using vision and speech models in GenAI Skills: Digital : Machine Learning~Digital : Natural Language Processing (NLP)~AI & Gen AI - Products & Tools Experience Required: 4-6 years Skills: Category Name Required Importance Experience SkillCategoryTest1_MN AI & Gen AI - Products & Tools Yes 1 7 years SkillCategoryTest1_MN Digital : Machine Learning Yes 1 7 years SkillCategoryTest1_MN Digital : Natural Language Processing(NLP) Yes 1 7 years
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