Site AI Engineer

Aegistech

Las Vegas (NV)

Hybrid

USD 150,000 - 190,000

Full time

6 days ago
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Job summary

Aegistech is seeking an experienced AI engineer to lead long-term, hybrid projects focused on Lean/Six Sigma-driven AI adoption and production-grade LLM/RAG solutions. Work will span Copilot Studio, Databricks, and multiple cloud platforms across field sites in the Las Vegas area.

The role emphasizes hands-on development, data integrations, and change enablement, with opportunities to influence SOPs and ROIs on a major long-term program.

Qualifications

  • 4+ years in AI engineering / full-stack data applications or data science, including 2+ years building production LLM/RAG solutions.
  • Bachelor’s in CS, Engineering, Physics, or a related field; Master’s preferred.
  • Prior hands-on work in construction or heavy process industries is a significant plus.
  • Demonstrated process excellence background (Lean/Six Sigma Green Belt or equivalent) with experience diagnosing process and data gaps and supporting change management plans with Operations Excellence.
  • Strong facilitation and communication skills.
  • Hands‑on expertise with Copilot Studio, Power Apps/Automate, custom connectors, and CoE Toolkit governance.
  • Programming & data stack: Python, SQL, Databricks Lakehouse, vector stores.
  • DevOps & IaC: GitHub Actions (or Azure DevOps) and Posit Workbench/Connect automation or comparable CI/CD tooling; strong Git/GitHub workflow discipline.
  • Integration & ETL skills: Foundational understanding of ETL/ELT design, Airflow or Databricks Workflows, and REST/GraphQL API development; proven collaboration with Data Engineering on source-to-lake and lake-to-agent pipelines.
  • Willing and able to travel and work on active job sites.

Responsibilities

  • Opportunity hunting and workflow redesign – Lead Lean/Six Sigma discovery workshops; map value streams, assess process and data maturity, and log low-effort/high-impact AI use cases.
  • Process and data maturity assessment – Evaluate each jobsite’s current workflows and underlying data; surface gaps that block AI adoption and develop phased improvement plans with Operations Excellence.
  • Assess the market solutions – Evaluate off-the-shelf and platform tools; launch pilots, measure impact, and scale wins.
  • Rapid AI-agent builds – Convert user stories into production-ready agents in Copilot Studio / Power Apps/Automate, ChatGPT Enterprise, or code-first frameworks within days; wire them to Teams/SharePoint on the front end and Databricks Lakehouse or other sources on the back end.
  • Enterprise-grade engineering & LLMOps – Build RAG pipelines backed by Delta tables, Unity Catalog, and Databricks Vector Search; automate infra with GitHub Actions / Posit; monitor latency, cost, adoption, and drift.
  • Data integrations – Partner with Data Engineering to design and maintain ETL pipelines, API integrations, and event-driven connectors feeding RAG and agents.
  • Cross-cloud orchestration – Blend OpenAI, Azure OpenAI, and AWS Bedrock behind secure custom connectors; package agents for seamless rollout.
  • Change enablement – Train crews, gather feedback, iterate, and track adoption and ROI metrics; apply influence model principles to embed agents into daily routines and SOPs, and track behavior change KPIs.
  • Stakeholder communication – Brief project leadership and clients on agent impact in clear business terms; contribute use cases and playbooks for “Construction Site of the Future.”
  • Escalation & hand-off – Draft clear user stories, data specs, and acceptance criteria for any complex solution that requires the central AI Solution Engineers or Data Engineering / Data Science team to lean in.

Skills

AI engineering
Full-stack data apps
Data science
Lean/Six Sigma
Facilitation
Copilot Studio
Power Apps/Automate
GitHub Actions
Python
SQL
Databricks Lakehouse
ETL/ELT
REST/GraphQL APIs
Communication skills
Travel willingness

Education

Bachelor’s in CS/Engineering/Physics
Master’s preferred

Tools

Copilot Studio
Power Apps/Automate
Databricks Lakehouse
GitHub Actions
Posit Workbench/Connect

Job description

This position can be consulting or contract-to-hire or full-time. Candidates must be in the local geographic area as the position is hybrid 4-days in the office. This is a LONG-TERM project! Great opportunity with terrific company!

Responsibilities:
  • Opportunity hunting and workflow redesign – Lead Lean/Six Sigma discovery workshops; map value streams, assess process and data maturity, and log low-effort/high-impact AI use cases.
  • Process and data maturity assessment – Evaluate each jobsite’s current workflows and underlying data; surface gaps that block AI adoption and develop phased improvement plans with Operations Excellence to establish the right process baseline before deploying agents.
  • Assess the market solutions – Evaluate off-the-shelf and platform tools; launch pilots, measure impact, and scale wins.
  • Rapid AI-agent builds – Convert user stories into production-ready agents in Copilot Studio / Power Apps/Automate, ChatGPT Enterprise, or code-first frameworks within days; wire them to Teams/SharePoint on the front end and Databricks Lakehouse or other sources on the back end.
  • Enterprise-grade engineering & LLMOps – Build RAG pipelines backed by Delta tables, Unity Catalog, and Databricks Vector Search; automate infra with GitHub Actions / Posit; monitor latency, cost, adoption, and drift.
  • Data integrations – Partner with Data Engineering to design and maintain ETL pipelines, API integrations, and event-driven connectors feeding RAG and agents.
  • Cross-cloud orchestration – Blend OpenAI, Azure OpenAI, and AWS Bedrock behind secure custom connectors; package agents for seamless rollout.
  • Change enablement – Train crews, gather feedback, iterate, and track adoption and ROI metrics; apply influence model principles to embed agents into daily routines and SOPs, and track behavior change KPIs.
  • Stakeholder communication – Brief project leadership and clients on agent impact in clear business terms; contribute use cases and playbooks for “Construction Site of the Future.”
  • Escalation & hand-off – Draft clear user stories, data specs, and acceptance criteria for any complex solution that requires the central AI Solution Engineers or Data Engineering / Data Science team to lean in.
Qualifications:
  • 4+ years in AI engineering / full-stack data applications or data science, including 2+ years building production LLM/RAG solutions.
  • Bachelor’s in CS, Engineering, Physics, or a related field; Master’s preferred.
  • Prior hands-on work in construction or heavy process industries (manufacturing, oil & gas, chemicals) is a significant plus.
  • Demonstrated process excellence background (Lean/Six Sigma Green Belt or equivalent) with experience diagnosing process and data gaps and supporting change management plans with Operations Excellence.
  • Strong facilitation and communication skills.
  • Hands‑on expertise with Copilot Studio, Power Apps/Automate, custom connectors, and CoE Toolkit governance.
  • Programming & data stack: Python, SQL, Databricks Lakehouse, vector stores.
  • DevOps & IaC: GitHub Actions (or Azure DevOps) and Posit Workbench/Connect automation or comparable CI/CD tooling; strong Git/GitHub workflow discipline.
  • Integration & ETL skills: Foundational understanding of ETL/ELT design, Airflow or Databricks Workflows, and REST/GraphQL API development; proven collaboration with Data Engineering on source-to-lake and lake-to-agent pipelines.
  • Willing and able to travel and work on active job sites.
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