Applied AI Engineer

Insight Global

Marlborough (MA)

On-site

USD 150,000 - 190,000

Full time

14 days+
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Job summary

Insight Global is seeking a Senior Applied AI Engineer to deliver practical AI solutions end‑to‑end, from discovery with business teams to production rollout and adoption. You will split time between business-facing work and engineering, building AI copilots, RAG applications, and workflow automations on Azure OpenAI and related platforms.

You will lead requirements discussions, define success metrics, and ensure solutions scale while meeting security and governance standards.

Qualifications

  • Bachelor's degree in a technical field or equivalent practical experience.
  • Five to eight years in software, solutions, data, or ML engineering with AI/automation experience.
  • Proficient in Python, JS/TS, or C# and open to low-code platforms when appropriate.
  • Working knowledge of modern AI including LLMs, RAG, agents, and prompt engineering.
  • Awareness of Claude, OpenAI, Gemini models and leading open-source models.

Responsibilities

  • Work with business teams to identify problems where AI can help and define success criteria.
  • Run discovery sessions to map current processes and pinpoint actual problems.
  • Design and build AI solutions using copilots, agents, RAG apps, and workflow automation.
  • Deploy and monitor solutions in production, ensuring adoption and ongoing improvement.
  • Collaborate with security, architecture, governance, and compliance teams for production readiness.

Skills

Python
JS/TS
C#
AI/ML
LLMs
RAG
Prompting
Azure
Stakeholder comms
Production deployment

Education

Bachelor's degree or equivalent

Tools

Azure
LangGraph
Semantic Kernel
MCP
Power Platform
Containers
CI/CD

Job description

Job Description

We are hiring a Senior Applied AI Engineer to help us find and deliver practical AI solutions across the company. This is a hands‑on role that covers the full life of a project — from sitting down with business teams to understand a problem, to deciding whether and how AI can help to building the solution, getting it into production, and making sure people actually use it.

You will split your time between business‑facing work and engineering. Some weeks that means running discovery sessions and mapping how a process works today; other weeks it means writing code or configuring a platform. We care more about solving the problem well than about which tool you used to solve it.

You should be comfortable starting from a vague problem rather than a written spec — asking good questions, defining what success looks like, and moving the work forward without waiting to be told what to do next. What You Will Do:

Work with the business
  • Meet with business teams to find and prioritize problems where AI can genuinely help, and be honest about where it can’t.

  • Run discovery sessions: ask good questions, map how the work gets done today, and pin down the actual problem before proposing anything.

  • Define what success looks like for each project, including the measures you will use to show it worked.

  • Turn rough ideas into clear problem statements, options, and plans that both leaders and engineers can act on.

Design and build
  • Design and build AI solutions such as copilots, agents, retrieval‑augmented generation (RAG) applications, and workflow automations on the platforms we use today, including Azure OpenAI, Claude, and Microsoft Copilot.

  • Pick the right approach for each problem, whether that’s custom code (Python, JavaScript/TypeScript, C#) or configuration on platforms like Power Automate or Logic Apps.

  • Follow solid engineering practices: version control, testing, CI/CD, and evaluation of AI output quality.

  • Integrate what you build with our enterprise systems, data, and APIs, with security considered from the start.

  • Stay with each project through deployment, adoption, support, and improvement. You own the outcome, not just the code.

Make it enterprise-ready
  • Work with our security, architecture, governance, and compliance teams to get solutions ready for production.

  • Weigh trade‑offs like cost, performance, reliability, and maintainability, and explain them in plain business terms.

  • Set up monitoring and feedback loops, track whether the solution is being used and delivering value, and adjust based on what you learn.

  • Help teams adopt what you build through training, feedback sessions, and change support.

Share what you know
  • Explain AI capabilities, limits, and risks clearly to technical and non‑technical audiences alike.

  • Document your designs and decisions so others can support and build on your work.

  • Coach teammates, review designs, and contribute to shared patterns and standards as the team grows.

We are a company committed to creating diverse and inclusive environments where people can bring their full, authentic selves to work every day. We are an equal opportunity/affirmative action employer that believes everyone matters. Qualified candidates will receive consideration for employment regardless of their race, color, ethnicity, religion, sex (including pregnancy), sexual orientation, gender identity and expression, marital status, national origin, ancestry, genetic factors, age, disability, protected veteran status, military or uniformed service member status, or any other status or characteristic protected by applicable laws, regulations, and ordinances. If you need assistance and/or a reasonable accommodation due to a disability during the application or recruiting process, please send a request to HR@insightglobal.com.To learn more about how we collect, keep, and process your private information, please review Insight Global's Workforce Privacy Policy: https://insightglobal.com/workforce-privacy-policy/.

Skills and Requirements
  • Bachelor's degree in a technical field, or equivalent practical experience.

  • Five to eight years in software, solutions, data, or ML engineering, including at least two years building AI, ML, or automation solutions.

  • Solid programming skills in Python, JavaScript/TypeScript, C#, or a similar language, plus a willingness to use low‑code platforms when they’re the better fit.

  • Working knowledge of modern AI, including LLMs, RAG, agents, prompt engineering, and evaluation.

  • A current view of the frontier model landscape — including Claude, OpenAI, and Gemini models and the leading open‑source models — and a practical sense of what each is good at.

  • Hands‑on experience building, integrating, and deploying applications on Azure, working with APIs, cloud services, and authentication. We run our AI solutions on our own Azure infrastructure, so you will be working in it from day one.

  • Experience leading requirements conversations with business stakeholders and defining success measures with them.

  • A track record of owning projects end to end and getting them into production with limited direction.

  • Clear communication with both technical and business audiences, including senior leaders. - Experience applying AI or analytics in Quality (quality systems, complaint handling, CAPA, audits) or Commercial (sales, marketing, pricing, customer analytics) settings.

  • Experience shipping AI agents, RAG applications, or copilots to production.

  • Familiarity with orchestration frameworks such as LangGraph or Semantic Kernel, or with Model Context Protocol (MCP).

  • Experience with Power Platform or similar workflow automation tools.

  • Experience with containerization, monitoring, observability, and production support.

  • Background in business analysis, consulting, or product management.

  • Experience working in a regulated environment.

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