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Webinar

The AI talent shortage is narrower than it looks

A 40 minute session on why most AI roadmaps stall on roughly six unfillable roles, and how to structure a small applied team that actually gets to production.

3–4 moTo operational
10–200Optimal team size
100%Compliant day one
100+ yrsCombined experience
Webinar on AI and engineering talent strategy
Oct 1, 2026Date
3:00 PM ETTime
40 minDuration
OnlineFormat
What this covers

Why the shortage is narrow, and where it actually sits

Most companies are not short of AI talent broadly. They are short of a small number of people who have kept a machine learning system working in production.

This session covers where the applied AI talent shortage genuinely sits, why the usual responses such as raising compensation or hiring more juniors do not resolve it, and how to structure a small team so that the roles which are actually scarce are used correctly.

Aimed at engineering and product leaders with an AI roadmap that has stalled on hiring, and at anyone planning a first production AI capability who wants to avoid staffing it as a modelling exercise when it is mostly a data and evaluation exercise.

What you will learn

Four things this session covers directly

01

Where the shortage actually sits

Why it is concentrated in senior applied engineers with production experience, not across AI roles generally.

02

Why the usual fixes do not work

Raising compensation redistributes the same population rather than growing it, and why widening the geography is the lever that actually works.

03

The roles a small team really needs

Why data engineers usually outnumber machine learning engineers, and why evaluation ownership is the role most often missing.

04

The hiring sequence that works

Why the senior applied lead has to be hired before the supporting layer, and what goes wrong when it is not.

Who is hosting

Your host for this session

The gap is never as many roles as people think. Most AI roadmaps are blocked on two to four people, and the mistake is building a plan around eight or ten and then wondering why none of the roles close.

R
RishiEngagement Manager, AI and Talent Solutions

Rishi works with clients on team composition for applied AI mandates, translating a capability requirement into the specific roles and seniority it actually needs rather than a generic AI hiring plan.

Who should attend

Built for people planning the team

  • Engineering and product leaders with an AI roadmap that has stalled on senior hiring
  • Anyone planning a first production AI capability and unsure how to size the team
  • Talent and HR leaders supporting an AI hiring plan that keeps missing its own targets
  • Leaders considering whether to widen the geography of a stalled search
Common questions

Frequently asked questions

Is this specific to a particular AI use case?

No. The talent structure applies whether the mandate is a recommendation system, an agentic workflow or a predictive model. The session focuses on team composition and hiring, not on a specific technical approach.

Will there be a recording?

Yes, sent to everyone who registers whether or not they attend live.

Do you cover agentic AI teams specifically?

The core structure applies to both, and we will note where agentic systems need an additional role for evaluation and containment, which is a common gap in existing plans.

Is this useful if we already have an AI team in place?

Yes, particularly if that team is struggling to reach production. The session covers the sequencing and ratio mistakes that are common even in teams that are already hired.

Can I send questions in advance?

Yes, include them at registration and we will prioritise covering them during the session.

Go deeper

Related reading

Register for this session

Save your spot for October 1st. If you cannot attend live, register anyway and we will send the recording.

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