W2 AI Engineer (NO C2C)

Inabia Solutions and Consulting, Inc.

$110K — $130K *
Enterprise Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 5+ years as an AI/ML Engineer; exceptional candidates with more experience are welcome.
  • Hands-on proficiency with LLM frameworks: Hugging Face, LangChain, and OpenAI API.
  • Experience architecting and deploying RAG pipelines in production environments.
  • Strong programming skills in Python, R, and SQL.
  • Ability to communicate technical concepts to non-technical audiences.
  • Experience integrating AI solutions into enterprise cloud platforms.

Responsibilities

  • Architect end-to-end RAG pipelines using Hugging Face, LangChain, and OpenAI API.
  • Integrate generative AI capabilities into enterprise cloud and data infrastructure.
  • Develop, fine-tune, and evaluate language models for specific use cases.
  • Write production-quality code to support data ingestion and analytics workflows.
  • Translate complex outputs into actionable recommendations for stakeholders.
  • Collaborate with teams to identify and prioritize AI use cases.
  • Monitor and improve model performance and pipeline reliability.
  • Document methodologies and outcomes for knowledge transfer.

Benefits

  • Opportunity to work on cutting-edge AI technologies in a dynamic environment.
  • Collaboration with cross-functional teams in enterprise-level projects.
  • Support for ongoing professional development and training.
  • Access to advanced data infrastructure in a cloud environment.
Full Job Description
Overview

Inabia is seeking an AI Engineer to design, build, and deploy advanced large language model solutions and retrieval-augmented generation (RAG) pipelines integrated into enterprise cloud environments. This role demands deep hands-on expertise in leading LLM frameworks alongside the communication skills necessary to translate complex model outputs into clear, actionable recommendations for operations and executive stakeholders. Candidates with manufacturing domain experience are strongly encouraged to apply.

Responsibilities
  • Architect end-to-end RAG pipelines leveraging Hugging Face, LangChain, and OpenAI API to solve enterprise-scale challenges.
  • Integrate generative AI capabilities into existing enterprise cloud environments and data infrastructure.
  • Develop, fine-tune, and evaluate large language models for domain-specific use cases.
  • Write production-quality code in Python, R, and SQL to support data ingestion, model serving, and analytics workflows.
  • Translate complex model outputs and analytical findings into clear, actionable recommendations for operational and executive stakeholders.
  • Collaborate cross-functionally with engineering, operations, and leadership teams to identify and prioritize high-impact AI use cases.
  • Monitor model performance, troubleshoot issues, and continuously improve pipeline reliability and accuracy.
  • Document architectures, methodologies, and outcomes to support knowledge transfer and reproducibility.

Key Qualifications
  • 5+ years of experience as an AI/ML Engineer (exceptional candidates with more experience are equally welcome).
  • Hands-on proficiency with LLM/AI frameworks: Hugging Face, LangChain, and OpenAI API.
  • Demonstrated experience architecting and deploying RAG pipelines in production environments.
  • Strong programming skills in Python, R, and SQL.
  • Proven ability to communicate technical concepts and model results to non-technical operations and executive audiences.
  • Experience integrating AI solutions into enterprise cloud platforms.

Preferred Qualifications
  • 2-4 years of experience working in a manufacturing domain.
  • Familiarity with shop floor operations, production planning, and systems such as MES, SCADA, and ERP.
  • Proficiency in industrial communication protocols (OPC-UA, MQTT, Modbus) with demonstrated ability to bridge OT/IT systems for real-time data extraction.
  • Applied experience with OEE, Six Sigma, SPC, and lean manufacturing methodologies to drive measurable improvements in yield, uptime, and operational efficiency.

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