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Head of Data Science

Fresha

London permanent

Posted: May 7, 2026

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Job Description

The AI-powered OS for beauty,

wellness and self-care

About Fresha

Fresha is the AI-powered operating system for the global beauty, wellness and self-care industry, connecting and powering everything from salons and barbers to spas, medspas, fitness studios and health practices.

Trusted by millions of consumers and businesses worldwide. Fresha is used by 140,000+ businesses and 450,000+ stylists and professionals worldwide, processing over 1 billion appointments to date.

The company is headquartered in London, United Kingdom, with 15 global offices located across North America, EMEA and APAC.

Fresha allows consumers to discover, book and pay for beauty and wellness appointments with local businesses via its marketplace, while beauty and wellness businesses and professionals use an all-in-one platform to manage their entire operations with an intuitive business software and financial technology solutions.

Fresha’s ecosystem gives merchants everything they need to run their business seamlessly by facilitating appointment bookings, point-of-sale, customer records management, marketing automation, loyalty, beauty products inventory and team management.

The consumer marketplace unlocks revenue potential for partner businesses by leveraging the power of online bookings and automated marketing through mobile apps and advanced integrations with major tech brands including Instagram, Facebook and Google.

We process millions of transactions and generate rich behavioural data across consumers and partners. Despite this, data science is still early at Fresha. That's the opportunity.

About the Role

We're hiring a Head of Data Science to build DS into a core function at Fresha, not manage what already exists. Today the team is small but technically strong. We have production ML models in fraud detection, text moderation, and taxonomy classification, running on SageMaker with a dbt/Snowflake data stack. But we're operating reactively, and we know there's significantly more value DS can unlock across the marketplace.

You'll have a clear mandate, leadership buy-in, and a technically strong team already in place. Your job is to set the direction, grow the team, and make data science visible and indispensable to how Fresha makes decisions and builds products.

This role is right for you if you've done this before - taken a small DS team at a scaling company and turned it into something the business can't operate without.

To foster a collaborative environment that thrives on face-to-face interactions and teamwork, this role will be based in our dog-friendly office 5 days per week in London: The Bower, 207-122, Old Street, London EC1V 9NR.


What You'll Do:
Strategy & Influence


Define the DS roadmap and align it to Fresha's business priorities across marketplace, payments, and partner growth


Shift DS from reactive (responding to product requests) to proactive (identifying opportunities, building POCs, running demos)


Build DS credibility with leadership - make the function visible, understood, and sought out


Partner with Product, Engineering, and Commercial teams to embed DS into decisions

Delivery & Technical Leadership


Ship ML products that drive measurable business impact - not just models, but outcomes


Establish experimentation as a discipline: A/B testing infrastructure, causal inference, automated experimentation for optimisations


Build foundational DS infrastructure: feature store, model governance, monitoring, CI/CD for ML


Stay hands-on enough to evaluate technical decisions and architecture trade-offs


Contribute directly to high-impact projects when needed

Visibility & Advocacy


Champion DS internally through demos, stakeholder education, and proactive engagement with PMs


Drive external visibility: engineering blog posts, conference talks, thought leadership


Help Fresha attract top DS talent by making the function known

Team Building


Scale the team in line with what the roadmap demands - hiring across ML engineering, data science, and MLOps


Develop the existing team, create career paths, and set technical and cultural standards


What the First Year Looks Like:
3 months: DS roadmap defined cross-functionally and signed off. New high-impact use cases on the table that the business hadn't previously identified. First POCs or MVPs in flight. DS is visibly present in product planning — already shifting from reactive to proactive.

6 months: Multiple ML/AI use cases shipped or in live evaluation. Experimentation is active in at least one product area. DS achievements are visible internally - demos, showcases, early external presence.

12 months: DS is a recognised, embedded function with a track record of delivery. Experimentation is a working discipline used beyond DS. MLOps maturity has stepped up. The team has grown in line with what was needed to get here.


What You Bring:
Must-Haves


4-5 years in data science, ML engineering, or related technical fields


3+ years directly managing and growing DS teams


Track record of building a DS function - not just inheriting one. You've taken a team from small to meaningful and made DS matter to the business


Shipped ML models to production at scale with real business outcomes


Strong stakeholder management - comfortable influencing C-suite, product leaders, and commercial teams


Technical depth to evaluate architecture decisions, review work, and call the right trade-offs


Experience developing people - grown ICs into leads, created career ladders, built team culture

Nice-to-Haves


Experience in the marketplace, SaaS, or fintech businesses


Familiarity with our stack: SageMaker, Snowflake, dbt, Docker


Built or contributed to feature store, MLOps, or experimentation platform infrastructure


Experience in establishing experimentation and A/B testing as an organisational practice


Thought leadership - blog posts, talks, open-source contributions


Experience making DS a "core function" at a company where it previously wasn't


Interview Process:
• Screen Stage - Video-call with a member from the Talent Team (30mins)

• 1st Stage - Google Hangout - soft skills & technical skills (60 mins)

• 2nd Stage - In-person case study + live review with Team (60 minutes)

• Final Stage - Stakeholder interview with Deputy Chief Product Officer OR Chief Technology Officer (60min)

We aim to finalise the entire interview process and deliver feedback within 4 weeks.

Every job application received is reviewed manually by our talent team. While we strive to assess applications within 7 days, the sheer volume of talented individuals expressing interest may occasionally extend this timeframe


Inclusive workforce

At Fresha, we are creating a culture where individuals of all backgrounds feel comfortable.

We want all Fresha people to feel included and truly empowered to contribute fully to our vision and goals. Everyone who applies will receive fair consideration for employment.

We do not discriminate based on race, colour, religion, sex, sexual orientation, age, marital status, gender identity, national origin, disability, or any other applicable legally protected characteristics in the location in which the candidate is applying.

If you have any accessibility requirements that would make you more comfortable during the interview process and/or once you join, please let us know so that we can support you.

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