Lead Data Scientist/Lead AI Engineer GenAI & Advanced ML
Job in
Indianapolis, Hamilton County, Indiana, 46262, USA
Listed on 2026-09-04
Listing for:
Go Digital Technology Consulting
Full Time
position Listed on 2026-09-04
Job specializations:
-
Software Development
AI Engineer (Applied/Software), AWS, Software Architect, Machine Learning/ ML Engineer
Job Description & How to Apply Below
Location: Indianapolis
Lead GenAI Engineer AWS
Location: Remote
Job Type: Full-time
Experience: 5 to 9 years
Cloud Requirement: AWS Mandatory (Amazon Bedrock & Sage Maker)
About the RoleWe need a technical leader to own the architecture and deployment of our Generative AI systems entirely on AWS. This is a hands‑on leadership role‑you will be making the big architectural calls, mentoring a talented team, and personally building the most complex parts of our GenAI platform. Because our infrastructure is heavily cloud‑native, deep and proven, experience with Amazon Bedrock and Sage Maker is a hard requirement.
If you enjoy owning a GenAI strategy end‑to‑end and scaling systems securely in the cloud, we want to talk to you.
- Architect and lead the development of end‑to‑end GenAI systems, covering everything from data ingestion to deployment and observability.
- Build and scale solutions using Amazon Bedrock and Sage Maker Jump Start, while integrating complementary services like Open Search Serverless.
- Drive technical direction for complex RAG architectures (GraphRAG, agentic RAG) and multi‑agent orchestration.
- Lead and mentor a team of AI engineers and data scientists, growing their technical depth through design and code reviews.
- Own the "Fin Ops" of our GenAI workloads‑managing token economics, caching strategies, and provisioned throughput to keep costs in check.
- Ensure enterprise‑grade security and compliance by strictly applying AWS best practices (IAM least‑privilege, KMS encryption, VPC isolation).
- 5-9 years in software engineering, ML, or data science, including 1-2+ years operating in a lead or architectural role.
- 2+ years of hands‑on experience actively shipping Generative AI products into production.
- AWS Mastery: Extensive, hands‑on experience provisioning and scaling models via Amazon Bedrock and Sage Maker, alongside strong Infrastructure‑as‑Code skills (Terraform, CDK).
- High‑level proficiency in Python, the AWS SDK (boto3), and building asynchronous APIs (like FastAPI).
- Expertise in agentic workflows (Lang Graph, CrewAI) and prompt engineering at scale.
- Excellent communication skills with the ability to translate technical trade‑offs to executives and business stakeholders.
- Active AWS Certifications (e.g., AWS Certified Machine Learning - Specialty, or Solutions Architect).
- Experience fine‑tuning models or managing custom model deployments on Bedrock.
- A background working in regulated industries (healthcare, finance) where navigating strict data privacy compliance is crucial.
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