Full-Stack AI Developer

H.W. Kaufman Group

Farmington Hills (MI)

On-site

USD 120,000 - 180,000

Full time

10 days ago

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Job summary

H.W. Kaufman Group is seeking a hands-on, AI-enabled developer to move across applications, automation, data, and business operations. You will identify high-impact opportunities, build working solutions, prove their value, and transition responsibly to sustaining teams.

You will collaborate with underwriting, claims, and IT stakeholders, delivering prototypes and scalable architectures while adopting responsible AI practices and governance.

Qualifications

  • Minimum 5+ years professional software development experience in enterprise environments.
  • Experience across application development, integrations, APIs, data access, and workflow automation.
  • Ability to evaluate code quality, maintainability, patterns, security implications, and operational fit.
  • Strong debugging, problem decomposition, and self-directed learning skills.

Responsibilities

  • Deliver quick-strike solutions in days or weeks where business value is clear.
  • Contribute to deeper exploratory engagements over one to three months with high potential value.
  • Build prototypes, automations, integrations, data-driven workflows, and application features across Salesforce, MuleSoft, .NET, RPA, AI/ML tooling.
  • Use AI development tools such as Claude, Codex, Gemini, Copilot to accelerate delivery while ensuring architectural fit and security.
  • Work with underwriting, claims, operations, and IT stakeholders to map workflows and value drivers.
  • Translate business problems into working software and measurable experiments with clear handoff packages.
  • Document architecture, configuration, dependencies, prompts, runbooks, and operational considerations.

Skills

Full-stack capability
APIs
Data access
Workflow automation
Problem solving
Documentation
Communication
Timeboxed engagements

Education

Bachelor's degree in CS or related field

Tools

Salesforce
MuleSoft
.NET/C#
RPA
AI/ML tooling

Job description

About Our Company

H.W. Kaufman Group is a powerful global network of companies dedicated to shaping the future of insurance. With thousands of dedicated professionals across an extensive network of over 60 offices around the world, we lead by offering innovative solutions that are at the forefront of the industry. We are privately owned and thus free from the influence of Wall Street. This allows us the ability to adapt to constantly fluctuating market conditions. From brokerage, underwriting, and real estate to claims, loss control and risk management services, our depth of services is unrivaled.

About Our Company

H.W. Kaufman Group is a powerful global network of companies dedicated to shaping the future of insurance. With thousands of dedicated professionals across an extensive network of over 60 offices around the world, we lead by offering innovative solutions that are at the forefront of the industry. We are privately owned and thus free from the influence of Wall Street. This allows us the ability to adapt to constantly fluctuating market conditions. From brokerage, underwriting, and real estate to claims, loss control and risk management services, our depth of services is unrivaled.

Equal Opportunity Employer

The H.W. Kaufman Group of companies is an equal opportunity employer. All employment decisions are based on business needs, job requirements and individual qualifications, without regard to race, color, religion, gender, gender identity, age, national origin, disability, veteran status, marital status, pregnancy, sexual orientation, genetic information or any other status or condition protected by the laws or regulations in the locations where we operate.

In addition, Kaufman will make reasonable accommodations to known physical or mental limitations of an otherwise qualified person with a disability, unless the accommodation would impose an undue hardship on the operation of our business.

H.W. Kaufman Group is building an AI Value Engineering capability inside Information Technology to engineer measurable business value across the enterprise. The AI Value Engineering team operates at the intersection of application development, RPA, data, business operations, and AI-enabled delivery. Its charter is to deliver high-impact solutions across quick-strike and deep-dive engagements, partner closely with business stakeholders, transition proven solutions to sustaining teams, and stop initiatives quickly when they are not proving value. The team is measured on portfolio impact, successful handoffs, quantified business value, disciplined focus, and the ability to avoid becoming a maintenance or production-support function.

This role is for a hands-on, AI-enabled developer who can move across applications, automation, data, and business operations to identify high-impact opportunities, build working solutions, prove their work, and transition responsibly to sustaining teams.

We are looking for developers for whom building software is more than a job. Strong candidates are resourceful, curious, disciplined, and energized by solving problems. They have opinions shaped by experience, reading, experimentation, and exposure to good engineering practices. They understand that AI changes the speed of software delivery, but not the need for judgment, craftsmanship, business understanding, and accountability.

This role is best suited for a T-shaped or comb-shaped technologist broad enough to wire together platforms, data, APIs, automations, and user workflows; deep enough to make sound technical decisions and avoid fragile solutions.

What Success Looks Like

What Success Looks Like
  • Take a loosely defined business problem, clarify the value hypothesis, and produce a working demonstration quickly
  • Know when an AI agent’s recommendation is plausible, risky, over-engineered, or misaligned with enterprise supportability
  • Move comfortably between front-end, back-end, integration, data, workflow automation, and platform configuration
  • Actively look for simpler, faster, more supportable paths rather than merely implementing the first technical answer
  • Produce solutions that can be handed off cleanly; you do not create hidden dependencies on yourself
  • Communicate tradeoffs clearly to technical and non-technical audiences
Responsibilities
  • Deliver quick-strike solutions in days or weeks where business value is clear and the path is known
  • Contribute to deeper exploratory engagements over one to three months where the solution is uncertain, but the potential value is high
  • Build prototypes, automations, integrations, data-driven workflows, and application features across Salesforce, MuleSoft, .NET, RPA, AI/ML tooling, and related enterprise platforms
  • Use AI development tools such as Claude, Codex, Gemini, Copilot, or similar agents to accelerate delivery while validating architectural fit, maintainability, security, and operational risk
  • Work directly with underwriting, claims, operations, and IT stakeholders to understand workflows, pain points, value drivers, and practical adoption constraints
  • Translate business problems into working software, measurable experiments, and clear handoff packages
  • Document architecture, configuration, dependencies, known limitations, prompts, runbooks, and operational considerations for the receiving team
  • Recommend pivoting or stopping work when an initiative is not proving valuable, without treating that as failure
  • Shadow and learn business workflows so solutions are grounded in how work gets done
  • Professional software development experience in enterprise environments with 5+ years of experience
  • Full-stack capability across application development, integrations, APIs, data access, workflow automation, and user-facing delivery
  • Experience with at least several of the following Salesforce, MuleSoft, .NET/C#, JavaScript/TypeScript, SQL, REST APIs, RPA/workflow tools, cloud services, CI/CD, or enterprise data platforms
  • Practical experience using AI-assisted development tools or a demonstrated ability to adopt them quickly and responsibly
  • Strong debugging, problem decomposition, and self-directed learning skills
  • Ability to evaluate code quality, maintainability, patterns, security implications, and operational fit
  • Ability to write clear technical documentation and conduct knowledge transfer with receiving teams
  • Comfort working in timeboxed engagements with defined outcomes, checkpoints, and handoff expectations
  • Experience in insurance, underwriting, brokerage, claims, or other workflow-heavy business domains is a plus
  • Exposure to enterprise architecture patterns, design patterns, domain modeling, relational database design, integration patterns, or similar engineering disciplines
  • Experience building automations or AI-enabled solutions that combine applications, data, documents, and human review workflows
  • Experience with prompt engineering, LLM evaluation, retrieval-augmented generation, agentic development workflows, or AI governance practices
  • Ability to operate inside appropriate enterprise guardrails while still challenging assumptions and finding better approaches
Complementary Strengths

Because this team is intentionally built from generalists who can go deep, we value candidates who bring complementary strengths that broaden the team’s overall capability. Experience in any of the following areas is a plus, but not required

  • Information security — secure development practices, identity and access management, data protection, secrets management, vulnerability remediation, secure API design, or practical experience partnering with security teams
  • Azure and cloud services — Azure App Services, Azure Functions, Logic Apps, Azure SQL, Storage Accounts, Key Vault, Service Bus, Entra ID, Azure DevOps, or similar cloud-native services
  • Infrastructure as Code / DevOps — Terraform, Bicep, ARM templates, CI/CD pipelines, environment configuration, deployment automation, observability, or release governance
  • Enterprise integration — API gateways, MuleSoft, event-driven integration, message queues, service orchestration, or integration monitoring
  • AI governance and operationalization — prompt/version management, LLM evaluation, data leakage prevention, human-in-the-loop review, auditability, monitoring, or safe deployment of AI-assisted workflows
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