ML/AIWork

AI Engineer

Rapid Eagle Inc · Minneapolis, US

Job description

Benefits:

  • 401(k) matching
  • Dental insurance
  • Health insurance

AI Engineer
Onsite
Minneapolis MN

Skills:-
Context

  • Role spans AI engineering

  • Tech decisions influenced by broader product stack:

o Frontend/backend for RAG and app work: Next.js and NestJS (Node)

o Light work with data pipelines: Python; Snowflake as the data platform (medallion architecture: bronze/silver/gold)

  • Tools and AI coding assistants:

o Claude Code

o GitHub Copilot via Visual Studio

o Evaluating vendor AI tools (e.g., Snowflake AI, Domo AI); use-case dependent.

o MCP servers: discussed; on roadmap; not currently required for internal LLM routing/abstraction.

Must Have Requirements

  • Strong Python experience (production-grade software engineering).

  • Hands-on experience working with LLMs in production (general LLM best practices; not strictly RAG). Examples:

o Efficient interaction patterns with LLMs (token management, sending full articles vs. selective context)

o Agentic approaches for complex reasoning (e.g., applying AP style guide across thousands of rules)

o Practical strategies to avoid context overload and maintain relevance.

  • Ability to “run with projects,” operate independently, and collaborate with stakeholders.

  • Minimum experience: approximately 5 years; must have “done it before.”

Should Have

  • Familiarity with Next.js/NestJS/Node for application/RAG-related work; strong Python candidates can ramp with AI coding tools.

  • CI/CD experience; Terraform not required (team strength exists, can learn on the job).

  • Good culture fit: collaborative, mission-driven, able to navigate flexible stack choices aligned with product teams.

Could Have:

  • Exposure to data engineering concepts and tooling:

o Building ingestion/ETL/ELT pipelines (Python)

o Working with Snowflake; experience in similar platforms (Redshift, Synapse) acceptable with ability to translate principles.

o Familiarity with medallion architecture and data modeling concepts is helpful but not strictly required (team can support ramp-up).

Additional Notes

  • RAG work currently lives in Next/Nest (Node); none in Python at present.

  • Preference for principles over specific vendor experience; candidates with adjacent platform knowledge can adapt.

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