Data Scientist
Spotted 1d agofulltime
Job description
About this role
Job Title:
Data Scientist
Skills:
Data Scientist, AWS, ML Solutions, LLM, OpenAI, Agentic AI, RAG, Python, Java, Docker/containers, CI/CD pipelines, DevSecOps, and ML/AI frameworks (e.g., PyTorch, TensorFlow, Hugging Face, LangChain/ LlamaIndex or similar agentic/RAG frameworks
Experience:
8+ Years
Location:
Auburn Hills, MI
5 Days Onsite
We at Coforge are hiring a Data Scientist with the following skillset:
Required Skills & Qualifications (Mandatory)
- Strong hands-on experience building and deploying ML solutions on AWS.
- Proven experience with LLMs, including OpenAI models/APIs, and current knowledge of leading AI/LLM model families.
- Hands-on experience building agentic AI systems (multi-agent orchestration, tool use, autonomous workflows).
- Experience building RAG systems, including semantic RAG (embeddings, vector databases, semantic retrieval).
- Deep understanding of data: exploration, quality, feature engineering, and its impact on model outcomes.
- Strong coding proficiency in Python and Java.
- Experience building front-end interactive applications (React, TypeScript, or Java-based UI) to surface model outputs to end users.
- Practical experience with Docker/containers and GPU compute for training/inference.
- Experience building and maintaining CI/CD pipelines for ML/AI workloads.
- Working knowledge of DevSecOps practices applied to ML pipelines.
- Experience providing operational support for production ML/AI systems, including monitoring and incident response.
- Experience implementing model governance and monitoring (drift detection, performance tracking, periodic retraining/tuning cycles).
- Demonstrated ability to design for human-in-the-loop / human-on-the-loop workflows for model oversight, retraining, and tuning.
- Demonstrated judgment in model/technique selection, including when to use AI/LLM approaches vs. traditional methods.
- Experience defining measurable testing/evaluation criteria for model performance and quality.
- Experience writing automated test cases, including using AI-assisted approaches to generate test coverage for model builds.
- Solid understanding of AI governance, legal, and security requirements, and experience embedding guardrails into model development.
- Familiarity with ML/AI frameworks (e.g., PyTorch, TensorFlow, Hugging Face, LangChain/LlamaIndex or similar agentic/RAG frameworks).
Preferred Qualifications
- Working knowledge of GCP and Azure ML/AI services.
- Experience with responsible AI toolkits (bias/fairness testing, model explainability).
- Certifications in AWS ML/AI or relevant cloud platforms.
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