CLA is a top 10 national professional services firm where our purpose is to create opportunities every day, for our clients, our people, and our communities through industry-focused wealth advisory, digital, audit, tax, consulting, and outsourcing services. Even with more than 8,500 people, 130 U.S. locations, and a global reach, we promise to know you and help you. CLA is dedicated to building a culture that invites different beliefs and perspectives to the table, so we can truly know and help our clients, communities, and each other. CLA is currently seeking a Senior AI Engineer to join our growing CLA Digital - Data and Automation Team. The Senior AI Engineer will lead the design and implementation of production-grade AI solutions across machine learning, optimization, and generative AI. This role is ideal for someone who can translate business problems into scalable, reliable technical solutions that perform in real-world environments. You will work closely with AI leadership while providing day-to-day technical guidance to junior team members. This position blends applied machine learning, software engineering, cloud architecture, and end-to-end solution delivery. Success in this role requires a strong understanding that production AI involves far more than model development—it includes evaluation, observability, integration, governance, and operational excellence. About the role: AI Solution Development & Architecture Lead the implementation of production-ready AI systems across predictive modeling, optimization, and LLM-powered applications Design end-to-end architectures including data pipelines, APIs, model services, orchestration layers, and monitoring systems Build and deploy AI workflows within Azure and Databricks environments Develop robust evaluation frameworks for both ML models and LLM-based systems Design and implement AI applications with strong grounding, safety, evaluation, and cost controls Build AI workflows including tool integration, memory systems, and orchestration logic Implement model routing, fallback strategies, and guardrails Develop context and memory systems (retrieval, summarization, session continuity) Evaluation, Safety & Reliability Establish robust evaluation frameworks for ML and LLM systems Define and monitor: Task success metrics and regression testing Hallucination and grounding performance Safety risks (prompt injection, data leakage) Implement observability practices including logging, tracing, and monitoring Ensure system reliability through testing, deployment standards, and incident readiness Technical Leadership Translate ambiguous business needs into clear technical designs and delivery plans Provide mentorship and technical oversight to junior engineers Lead architecture reviews, code reviews, and technical design discussions Establish engineering standards across testing, CI/CD, deployment, and monitoring Cross-Functional Collaboration Partner with product, engineering, security, and business stakeholders Support solution design, feasibility assessments, and delivery planning Contribute to proposals, technical narratives, and client-facing engagements
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Job Type
Full-time
Career Level
Mid Level
Education Level
No Education Listed
Number of Employees
501-1,000 employees