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Brian Astrove
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The Seven AI Roles Law Firms Are Hiring For

Search the keyword “AI” on the Kirkland job page and you get over ninety job openings. Search on Latham, Covington, or King & Spalding and you’ll find many more.

This data shows a new layer of roles forming around lawyers. That story doesn’t get much attention, and it matters if you’re going to make this transition well. Whether your firm can cover these roles is what will separate firms over the next few years.

While large firms can hire full-time employees for each role, smaller firms can cover the same ground by assigning an existing attorney or bringing in part-time support. Either way, these are roles that turn an AI license into real value.

I read dozens of job descriptions and found seven functions in high demand. One is a sleeper category: Knowledge Management. It’s an existing back-office role that has now become a competitive advantage. It determines how good your AI is, because the better your playbooks and precedents, the better the output. Here’s each of the seven.

This person breaks down legal processes into steps that AI can execute repeatedly and that produces output up to the firm’s quality standards. Skills required are prompt engineering, experience with legal AI platforms, evaluation discipline, and legal practice experience.

Recurring responsibilities:

Examples are Kirkland AI Innovation Advisor; Covington Applied AI Manager (one per practice group) and Director of Applied AI; Latham Legal Engineering Attorney and AI Services Attorney; King & Spalding Agentic Workflow Specialist

Adoption, training, and change management

This position gets attorneys to actually use the tools and quantifiably measures their impact so the firm can make data-driven decisions. Skills required are teaching, communication, familiarity with AI concepts, experience with technology enablement.

Recurring responsibilities:

Examples are Latham Senior Manager of Legal Innovation; King & Spalding Legal GenAI Platform Specialist, the Covington Director of Applied AI, and the Kirkland AI Innovation Advisor

Knowledge Management rebuilt for AI

This role converts institutional knowledge into AI-ready assets. It’s an indication that the firm believes its know-how and playbooks are its competitive advantage.

Recurring responsibilities:

Examples are Latham Associate Director of AI - Knowledge Transformation; Covington Director of Knowledge Management and Practice Technology

AI Governance and Risk

This person ensures AI usage is compliant with internal policies, ethics rules, and regulatory requirements.

Recurring responsibilities:

Examples are Latham Associate Director of AI Governance; governance duties also embedded in the King & Spalding Agentic Workflow Specialist, Covington Director of Applied AI

Platform and Product Owner

This person owns the tools. They’re responsible for the vendor relationships, product roadmap, pilots, and return on investment (ROI). Skills include product management, enterprise implementation experience, and change management.

Recurring responsibilities:

Examples are King & Spalding Legal GenAI Platform (Harvey) Specialist; Latham Innovation Attorney - Product Owner

Client-facing AI strategy

This is a business development role to own the firm’s client-facing AI narrative and value proposition. They can answer the client’s questions about data privacy and governance while helping to sell AI capability as a differentiation.

Recurring responsibilities:

Examples are Latham Associate Director of AI & Innovation - Client Services; client-facing elements in the Kirkland AI Innovation Advisor and Kirkland Legal Practice Technology Principal of Review & AI Services

AI Engineering

These are technical roles for the few large firms building their own AI products. Small firms can safely ignore this.

Recurring responsibilities:

Examples are Kirkland Innovation AI Developer, AI Infrastructure Director, and AI Infrastructure Senior Engineer I; Latham Supervisor of AI Software Engineering



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