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TripleTen

AI Systems & ML Engineering Industry Expert

London
Posted about 20 hours ago
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TripleTen Overview

TripleTen is an EdTech company that designs and runs tech career learning programs for the US and Latin American markets. We've been doing it for over five years, teaching complete beginners β€” people with no prior tech background β€” through cohort-based programs built on our own platform and curriculum, developed in partnership with Nebius AI. Our team is fully remote and globally distributed, and we serve a large, active student base across both regions.

We're launching three advanced engineering programs for working mid/senior engineers, and we're looking for a small number of Industry Experts to set the technical bar in each of them.

This is not a teaching or content-authoring role. The curriculum is built by a separate team of senior authors. What we need from you is judgment: the kind of call a Staff or Principal engineer makes when they look at a design and know, in thirty seconds, that the service split is wrong, the eval is measuring the wrong thing, or the scope will not survive contact with a client.

Our students design and defend real systems. Your role is to challenge those decisions the way you'd challenge a peer's β€” and to be the name that tells an experienced engineer this program is worth their time.

The Audience

Working mid- and senior-level engineers, typically 5–10 years in: backend, platform, ML, and infrastructure people, with senior and staff titles and the occasional engineering manager in the room. Many write production code daily. They are not career changers, and they spot shallow feedback instantly. The bar here is real seniority, not familiarity with the topic.

What You Will Do

  • Sit on final project defenses. Review a deployed system, a distributed-systems capstone, an agentic architecture, or a client-facing delivery package against the rubric β€” then run the defense and give structured, senior-level critique.
  • Chair mock review boards and executive-panel presentations. Architecture review boards, model and system reviews, exec go/no-go presentations, depending on the program.
  • Host one or two live sessions a month on the design and decision layer of your domain: where systems split, how they fail, which tradeoff to make and why.
  • Set the technical standard for the instructors running weekly delivery, and act as their escalation point on the hard design calls.
  • You are not on the hook for weekly coverage, office hours rotations, or first-line questions. A separate team handles that.

Reasons to use Rodeo

I’m in my final year doing Economics and I don’t know whether to apply for grad schemes now or do a masters first. What do you think?

Honest answer β€” it depends on where you want to end up. A lot of top grad schemes (Big 4, civil service, banking) don’t need a masters. Let’s look at the ones you’d be competitive for now, and we can decide if a masters actually adds anything.

Also worth knowing: most autumn 2026 applications are open now. Timing matters more than you think.

Start with a chat, not a search bar

Grad scheme, placement, apprenticeship? Not sure what you want yet β€” that's fine. Your agent talks it through with you and turns "I have no idea" into a shortlist.

P

Graduate Consultant β€” 2026 Scheme

PwCΒ·London, UK
Β£35,000/yr

Why you're a good match

Strong

Your economics background and your summer at a regional bank line up with what PwC looks for on the consulting scheme. Applications close in four weeks.

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It searches the market for you

Every day your agent scans the market matching roles against what actually matters to you, not just keywords on a CV.

Why you're a good match

You’ve got the grades and the economics background, and your bank internship is exactly the experience this scheme looks for. Apply soon β€” deadlines close within the month.

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Strong

Experience fit

Your summer at the bank plus your econometrics coursework map directly to the day-one responsibilities on this scheme β€” client modelling, market briefings, and deal support.

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Strong

Only hits

No noise. No "maybe this fits." Just roles with a clear explanation of why they're right β€” and where to focus when applying.

Requirements

  • 8+ years of professional engineering experience, currently at senior/staff/principal level or equivalent (Staff/Principal Engineer, Senior/Staff ML Engineer, Solutions Architect, Forward Deployed Engineer, technical lead).
  • You've shipped systems that run in production at real scale, as an employee in an engineering role β€” not coursework, not side projects, not a slide deck about someone else's platform.
  • You can explain why a decision was made, not just how it was implemented β€” and diagnose and critique someone else's architecture live, on a call, without preparation.
  • A public technical footprint: GitHub, conference talks, a book or O'Reilly/Manning title, a technical blog, open-source work, or documented mentorship.
  • Strong English (C1+). Sessions and written reviews are in English for a US-based audience.
  • Time zone: Americas strongly preferred (US / Canada / LatAm). Defenses are booked in advance, so some flexibility exists β€” but sessions land in US afternoon and evening hours.
  • Comfortable using AI tools in day-to-day technical work.

Domain Depth β€” One of Three Tracks

You don't need all three. Tell us which one is yours.

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AI/ML Engineering

  • Agentic systems and orchestration (LangChain, LangGraph, CrewAI, ADK)
  • Agent reliability and guardrails, MCP
  • LLM evals β€” eval harnesses, LLM-as-judge, hallucination metrics
  • Applied fine-tuning (SFT/LoRA/PEFT)
  • LLM observability, A/B experiment design, model serving and inference cost

AI Systems Engineering

  • System and API design, service architecture, cloud and infrastructure (AWS, Kubernetes, Terraform, CI/CD)
  • Distributed systems, observability and incident response
  • Plus LLM-powered systems in production: RAG, model serving, fallback paths, cost control

Forward Deployed Engineering

  • End-to-end ownership of deployments in real client or enterprise environments: discovery and scoping under ambiguity, stakeholder management without formal authority, integration with enterprise systems, rollout and adoption
  • On top of LLM and agent systems in production, RAG over enterprise data, and APIs/integrations

Nice to Have

  • You've already run technical sessions in some form: internal tech talks, conference workshops, engineer onboarding, or mentoring.
  • Hands-on ownership of an eval or observability stack in production, not just usage of one.
  • Experience being the primary technical resource embedded with a customer team (for the FDE track).

What We Can Offer You

  • Your name and profile featured as an Industry Expert on the program page.
  • A peer-level audience. A defense is a technical review with a working engineer, not homework grading.
  • A genuinely small commitment. 4–10 hours a month, slots booked about two weeks ahead, pausable at any time.
  • Hourly payment, negotiable depending on experience, track, and scope.
  • Fully remote, with a small international team and no micromanaging.
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Skills

AI/ML Engineering
System Architecture
Distributed Systems
LLM Evals
Agentic Systems
Cloud Infrastructure
Technical Leadership
Mentorship
API Design
Observability
CI/CD
Stakeholder Management
Production Deployment
Technical Critique
Architecture Review

Location

London, England, United Kingdom

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