Machine Learning Engineering Manager

Posted Yesterday
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Hiring Remotely in United Kingdom
Remote
Senior level
Artificial Intelligence • Energy • Industrial • Manufacturing • Renewable Energy
The Role
Lead and own tem's ML function (Rosso): set ML strategy, hire and develop ML engineers, establish operating systems (monitoring, incident reviews, prioritisation), and drive close collaboration with software engineering to deliver forecasting, pricing, and optimisation models that meet business outcomes.
Summary Generated by Built In

📈 Who We Are:

We are rebuilding the energy transaction, making it transparent and fair.

Our goal is to put power back where it belongs, in the hands of customers and to take on one of the most critical problems of our century, access to low cost electricity.

tem exists to fix a broken global energy market that’s long favoured legacy operators, intermediaries, and opaque pricing. Today’s electricity system was not designed for rapid decarbonisation, AI-driven efficiency or fair access for the actual users - businesses and generators.

We’ve built the first AI native transaction infrastructure to reinvent how electricity is bought, sold and priced. Our technology is designed to cut out the inefficient fees, automate complex market flows, and bring transparency and fairness to energy transactions at scale.

In late 2025, after extraordinary growth, we closed a $75 million Series B - led by Lightspeed Venture Partners with participation from Albion, Atomico, Allianz, Hitachi Ventures, Hitachi Ventures, Schroders Capital and others - positioning us for global expansion, deeper product innovation and category leadership.

We’re scaling internationally and building toward a future where AI-driven infrastructure is foundational to electricity markets worldwide.

Since launch, our modern utility product, known as RED, has already facilitated thousands of business customers and billions in energy transaction value, proving that modern software and AI can transform an industry built on legacy systems.

At tem, we’re not just building another energy company, we’re rearchitecting market infrastructure so that transparency, efficiency and sustainability become the default, not the exception.

🏅 The Role:

We're looking for an Machine Learning Engineering Manager to own tem's most technically complex function.

Rosso is tem's core IP: the AI-powered engine at the heart of how we price, forecast, and optimise energy transactions. The ML engineers who build it work across time-series forecasting, pricing, optimisation, and classical ML simultaneously. The work is technically complex and commercially critical.

This role sits within our Leader track: one person owns their unit end to end - people, strategy, delivery, budget, and outcomes. That's this role. You're not a coach on the sideline. You're the person accountable for the ML function performing and for Rosso hitting its numbers.

You'll report into the GM of Rosso, set strategic direction for ML in partnership with them, and work closely with the Rosso Engineering Manager to keep ML and software engineering operating as one team. You'll own the hiring bar, and be directly responsible for the performance and development of every ML engineer in the function.

In your first 12 months: the ML engineers trust you and see you as their owner; the function has clear operating rhythms and a predictable hiring pipeline; each engineer has a clear development path; and ML and software engineering collaboration inside Rosso is noticeably stronger.

🚀 Responsibilities:
  • Own the ML function end to end: You hold the people, the priorities, the strategy, and the outcomes. This isn't a coordination role. You're the single accountable leader for how the ML function performs inside Rosso.

  • Set and sign off on ML strategy: Work with your ML engineers and Experts to develop strategic direction. Propose it, debate it, sign off with the GM. When there's alignment, operate with a high degree of autonomy.

  • Build a high-performing team: Lead hiring, onboarding, performance management, and career development. Set the frameworks and operating rhythms that give ML engineers clarity, support, and room to grow. Act on underperformance. Hold the hiring bar high as the team scales.

  • Own the operating systems: Build and maintain the rituals and structures that keep the team effective - sprint cadences, incident review, model monitoring feedback loops, cross-team reporting, and the prioritisation processes that keep the function focused on what matters.

  • Enable without adding overhead: You are a sounding board, not a technical authority. Ask the right questions, help surface risks, and create space for experts to make good decisions - without positioning yourself as another review layer.

  • Drive collaboration with the Rosso Engineering Manager: Partner closely to align priorities between ML and software engineering. The two teams need to work together effectively, and you are a key part of making that happen.

🎯 Requirements:

Must haves:

  • Ownership orientation: You want accountability for outcomes, not just oversight of a team. You're comfortable holding the pen on strategy, budget, and people - and being the person the GM holds to account when the numbers aren't moving.

  • Strong management experience: Proven experience managing ML engineers or scientists at varying ranges of experience (Junior to Staff), with enough understanding of the ML lifecycle and core disciplines including forecasting, optimisation, pricing, and classical ML to manage credibly

  • A strong people development track record: 1:1s and performance conversations that actually move people forward, action underperformance, clear progression frameworks, and coaching that builds capability across engineers at different career stages

  • Experience building and owning team operating systems: the prioritisation frameworks, sprint cadences, incident review processes, and feedback loops that make a technically complex team perform consistently.

  • A strong hiring instinct for ML roles: you have defined the bar, built pipelines in a competitive market, and brought in strong people who had other options

  • Experience managing a technically diverse team: comfortable holding substantive conversations across different ML problem types and helping a multi-disciplinary team prioritise and operate without being the expert in any single domain

  • Experience in a startup or high-growth environment: comfortable with ambiguity, able to operate effectively when not everything is figured out, and ready to do more than a textbook people-manager role at a larger organisation would require

Bonus points:

  • Background in energy, fintech, or another domain where ML is mission-critical

  • Experience building or evolving a career framework or skills matrix from scratch

  • Familiarity with the intersection of ML and software engineering, and how to facilitate effective collaboration between the two

  • You have hired top ML talent in a competitive market and know how to attract people who have options

✨ Benefits & Perks:
  • Competitive salary - We review salaries twice a year using real-time market data, with transparent, consistent pay for the same role and level.

  • Stock Options - everyone on the team has ownership in our mission.

  • 25 days holiday + public holidays - Swap public holidays for ones that matter most to you. Plus, get an extra day off for your birthday 🎉.

  • Remote & flexible working - We're fully remote, distributed across Europe with clear core hours, and no internal meetings on Friday afternoons.

  • Home working & wellbeing budgets:

    • Up to £1,200 / €1,200 annually to upgrade your remote setup (co-working passes, equipment, etc.).

    • Up to £150 / €150 monthly on anything that supports your wellbeing - from therapy to gym memberships to meditation apps.

🗣️ Interview Process:

Our processes normally take around 2-3 weeks from first call to offer - please let us know about any adjustments to timelines that may be required.

  1. First call with our Talent Team (30 mins). This is to understand your experience, motivations, and discuss the role in more detail.

  2. Behaviour Interview with our Head of Data (45 mins). This is your chance to really understand the role, the expectations, and ensure alignment on ways of working.

  3. Skills Interview with the Team (75 mins). You'll meet with potential peers in this session and will discuss how you lead and manage high performing teams, and discuss a range of scenarios.

  4. Culture-Add Interview with Stakeholders (45 mins). The final session will be with two cross-functional stakeholders, and will explore how your values align with ours, and is designed to be a genuine two-way conversation, your chance to understand what it's really like to work at tem.

We welcome applications from people of all backgrounds, experiences, and identities, including those that are traditionally underrepresented in the tech and energy sectors. If you’re excited about this role but not sure you meet every requirement, we’d still love to hear from you. Your unique perspective could be exactly what we’re looking for.

Skills Required

  • Ownership of ML function, strategy, budget, and outcomes
  • Proven experience managing ML engineers or scientists across levels
  • Understanding of ML lifecycle and disciplines including time-series forecasting, optimisation, pricing, and classical ML
  • Strong people development track record (1:1s, performance conversations, progression frameworks, handling underperformance)
  • Experience building and owning team operating systems (prioritisation frameworks, sprint cadences, incident review, model monitoring)
  • Strong hiring instinct for ML roles and ability to build pipelines in a competitive market
  • Experience managing a technically diverse, multidisciplinary ML team
  • Experience working in a startup or high-growth environment; comfortable with ambiguity
  • Background in energy, fintech, or other mission-critical ML domain
  • Experience building or evolving career frameworks or skills matrices from scratch
  • Familiarity with ML and software engineering collaboration best practices
  • Proven track record hiring top ML talent in competitive markets
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The Company
200 Employees
Year Founded: 2021

What We Do

We believe in power, as it should be. tem is building the new transactions infrastructure for a modern energy market to solve the biggest generational problem of our time, universal access to the lowest-cost electricity. Using the power of AI, we’ve reinvented the way the world transacts energy. Today we're powering over 4,000 UK customers on RED, our modern utility experience, with fairer, transparent energy 30% cheaper - and we're just getting started. People are why we do this. We won't stop until we bring 100% transparency to the cost of energy and become the trusted engine to power the world's energy transactions.

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