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Head of AI and Data Platform Engineering - Specialty Distribution

Job in Plano, Collin County, Texas, 75086, USA
Listing for: 001 Brown & Brown, Inc
Full Time position
Listed on 2026-08-22
Job specializations:
  • IT/Tech
    Data Engineering, AI Engineer (Applied/Software), AI Business & Operations
Salary/Wage Range or Industry Benchmark: 180000 - 260000 USD Yearly USD 180000.00 260000.00 YEAR
Job Description & How to Apply Below

Overview

Bridge Specialty Group is seeking a Head of AI & Data Platform Engineering – Specialty Distribution to join our growing team in Plano, TX or Daytona Beach, FL. The leader will oversee the Specialty Distribution Data and AI Engineering function, define strategy, operating model, and execution roadmap for enterprise-grade data and AI products, and enable the business to consume trusted data, analytics, reporting, insights, automation, and AI solutions that improve decision‑making, operational performance, customer experience, and growth.

Responsibilities

Strategy, Architecture, and Governance
  • Own and evolve the Specialty Distribution Data strategy while contributing to broader Enterprise Data, AI, and Specialty Distribution AI strategies.
  • Develop and maintain roadmaps that translate business priorities into executable data, analytics, and AI platform initiatives.
  • Establish scalable architecture patterns, engineering standards, governance practices, and delivery frameworks for data and AI solutions.
  • Implement extensible and reusable data products that align with enterprise models, technology standards, security controls, and platform patterns.
  • Manage data and AI risk, including compliance with enterprise data, AI, security, privacy, and regulatory policies.
  • Partner with enterprise architecture, security, infrastructure, software engineering, analytics, and business leadership teams to ensure solutions are secure, scalable, reliable, and aligned to enterprise strategy.
Data Platform Operations and Engineering
  • Build and lead a best‑practice data and AI engineering operating model, including team structure, processes, tools, standards, governance, and ways of working.
  • Ensure the reliable operation of data services, platforms, pipelines, integration services, orchestration tools, reporting data sets, and supporting infrastructure.
  • Oversee design, build, optimization, and support of modern data pipelines using technologies such as Databricks, Delta Lake, Azure Data Services, Azure Data Factory, Azure Data Lake, Synapse, SQL, and related platforms.
  • Establish high‑quality engineering practices for modular code, reusable components, automated deployments, environment management, branching strategies, CI/CD pipelines, and SDLC discipline.
  • Drive continuous improvement across data engineering, Dev Ops, data operations, platform reliability, and delivery processes.
  • Support data and BI developers by operationalizing analytics, reporting workflows, curated datasets, semantic layers, and visualization‑ready data products.
AI Engineering and Product Delivery
  • Lead the delivery of AI solutions, AI agents, automation capabilities, and intelligent products in partnership with Enterprise AI, business teams, and platform stakeholders.
  • Deploy incubated AI solutions into production and scale successful capabilities across the business to expand adoption, value realization, and operational coverage.
  • Ensure AI products are designed with appropriate governance, security, compliance, monitoring, responsible AI practices, and measurable business outcomes.
  • Partner with Enterprise AI and Communications teams to support training, enablement, and adoption of AI tools such as Microsoft Copilot and other approved enterprise AI platforms.
Data Project Delivery and Business Enablement
  • Deliver data and AI initiatives from concept through production, ensuring solutions are aligned to business priorities, enterprise standards, and measurable value.
  • Build strong relationships with executive stakeholders, business leaders, product owners, analytics teams, and technology partners to translate business needs into effective data and AI capabilities.
  • Manage and prioritize a backlog of enhancements, small changes, platform improvements, and new data product needs.
  • Support onboarding and integration of acquisitions into the company’s data, analytics, AI, and systems landscape.
  • Identify inefficiencies across technical pipelines, platform operations, and engineering processes, and design pragmatic solutions that improve speed, quality, reliability, and scalability.
Leadership and Talent Development
  • Build, lead, and develop a high‑performing AI and data…
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