Sona

Senior Machine Learning Engineer

Europe, United Kingdom full-time Mid Salary not listed
full-time Mid level Technology & IT Curated
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About the role

Running a frontline business is an operational puzzle most software has never touched. Shift-by-shift labour costs, compliance that changes by region and by role, and margins thin enough that a badly built rota can sink a quarter. It's a harder problem than most white-collar SaaS, and yet frontline sectors employ 80% of the global workforce and have received about 1% of the last decade's software investment.

We think that's because the problem needed AI, not just better software, before it was solvable. Frontline organisations sit on enormous amounts of operational data. Used properly, that data lets agents take on real parts of running the business rather than just reporting on it. That's what we're building at Sona, and it's early enough that the systems you build now will still be foundational in three years.

We've raised over $100M from N47, Felicis, Gradient and Northzone, signed more than 100 enterprise customers across the UK and US, and opened offices in London, New York, Austin and Lisbon. More on working at Sona here.

About the Role

You'll join a two-person ML team and a forecasting system making half hourly demand predictions across diverse targets for multiple restaurant chains. Our forecasting models enter into a complex environment with key machine and human decisions being made on their predictions, facing feedback loops and a highly variable environment. The system works - the challenge now is scaling it from a handful of clients to 100s.

You'll own client launches end-to-end: validating data, selecting models, running UAT, going live, and monitoring performance afterwards. You'll join client calls, build relationships, and understand what actually matters on the ground - not just whether the model is accurate, but whether the kitchen prepped the right amount of food.

You'll love this role if:

You enjoy taking ownership of the product and outcome end-to-end. Machine learning at Sona is a success if we have happy clients running successful businesses as well as the models which are best in industry

You have a focus on solving the problem and when given the choice between "complicated and shiny" vs "get something simple in front of a user", you choose the latter

You're excited by working with our industry experts to really understand what's happening in our client's businesses and the realities of working there

You see beyond the data to the world that resulted in this data generating process, the issues that come with it and the opportunity that it gives us

You're experienced in and excited by taking a machine learning project from business idea to deployed production system

You default to AI tools for development and you're excited by what they can achieve for ML. You use Claude Code, Cursor, or equivalent daily - not as a novelty, but as your standard working mode

Our role won't be for you if:

You're hoping to do research and publish research papers as a key element of the work that you do

You're looking to move into a less technical, more managerial role

You're keen to get your hands on fancy new technology X and apply it to something

You prefer to work on one thing and make it perfect before moving on - the role requires pragmatism, parallelism, and iterative improvement

Requirements

You'll need these skills/experience to be successful:

Production ML experience, with a track record of deploying ML systems that handle messy data, fail gracefully, and need monitoring

Strong ML fundamentals - you can reason about trade-offs in practice, explain the "why" behind feature and model choices, and make good judgement calls when something unexpected happens

Client-facing deployment experience - you've personally owned an ML deployment end-to-end and are comfortable on calls with non-technical stakeholders

Strong programming skills in Python, including the ML/scientific Python stack (e.g. numpy, scikit-learn)

Daily use of AI development tools (Claude Code, Cursor, Copilot or equivalent) as your default working mode

It would be great if you have experience in some of these areas too:

Forecasting, time-series, or demand-planning - someone who understands lag features, calendar effects, and evaluation integrity intuitively will ramp significantly faster

Our stack: Python, scikit-learn, MLflow, Docker, GCP

A small team where ownership is wide and context-switching is normal

Benefits

Salary: £95,000-£110,000

Fully remote (European timezones)

Share options

35 days annual leave (25 days standard plus 10 flexible public holiday days)

Extra day of leave for every year of service

Pension contributions matched up to 5%

Comprehensive health insurance

Enhanced parental leave & pay

Salary sacrifice childcare scheme (Workplace Nursery)

Co-working space stipend for those based outside London

Annual all expenses paid team retreats

The latest Macbook and equipment budget for your home office

Professional development budget

Unlimited free books

Note: this represents a typical benefits package for a UK-based, full-time employee. Exact details may vary based on location and employment type but we try to be as fair as possible to all of our team members. Please ask your contact in the Talent team to clarify the available benefits for you.

Interview prep

Walk in with sharper answers.

Use this as a quick practice sheet before you speak with the employer.

Mid
Technology & IT Data Analysis Python Remote Collaboration Senior Machine Mid level

Likely questions

  1. Tell us about work you have done that is close to the Senior Machine Learning Engineer role.
  2. How would you approach your first 30 days at Sona?
  3. Which of Data Analysis, Python and Remote Collaboration have you used recently, and what did it help you achieve?
  4. Describe a time you solved a problem without waiting to be told exactly what to do.
  5. How do you handle busy days, changing priorities, or pressure at work?

Prepare before the call

  • A recent example that proves your experience with Data Analysis, Python and Remote Collaboration.
  • One short story with a problem, your action, and the result.
  • Two examples that show the strengths listed on your CV.
  • A clear reason why this role and company interest you.
  • Your availability, preferred work style, and salary expectations.

Ask them

  • What would success look like in the first 90 days?
  • What are the main problems this hire should help solve?
  • How does the team give feedback and measure good work?
  • What does a normal working week look like for this role?
Practice line

I am interested in the Senior Machine Learning Engineer role because I can bring practical experience in Data Analysis, Python and Remote Collaboration, learn the team quickly, and contribute to the outcomes Sona needs from this hire.

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