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Head of Data Science
Job in
London, Greater London, W1B, England, UK
Listed on 2026-09-09
Listing for:
Fresha
Full Time
position Listed on 2026-09-09
Job specializations:
-
IT/Tech
AI Engineer (Applied/Software), Machine Learning/ ML Engineer, Data Science Manager, Data Analyst
Job Description & How to Apply Below
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 t's the opportunity.
The Mandate Solidify data science as a core function the data science agenda - don't wait to be handed one. Identify the work that moves revenue or cost, prioritise ruthlessly, and get exec buy-in to make it happen. Champion data science across the business until the function is indispensable to how Fresha makes decisions and builds products.
About the Role We're hiring a Head of Data Science to build data science into a core function at Fresha, not manage what already exists. The team is small but technically strong - production ML in fraud detection, text moderation, and taxonomy classification, running on Sage Maker with a dbt/Snowflake stack. We're operating reactively, and there's significantly more value data science can unlock across the marketplace.
You'll have leadership buy-in and a technically strong team already in place. Your job is to set the direction, grow the team, and shift data science from a service function to something the business builds around. This role is right for you if you've done this before - taken a small data science 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 4 days per week in London:
The Bower, 207-122, Old Street, London EC1V 9NR
.What You'll DoSet the agenda & prioritise ruthlessly
Define the data science roadmap aligned to Fresha's business priorities across marketplace, payments, and partner growth
Identify data science opportunities that move revenue or cost - and deprioritise the rest
Make the case for data science investment at the exec table
Ship impact & build the technical foundation
Ship ML products that drive measurable business outcomes - not just models
Establish experimentation as a discipline: A/B testing, causal inference, automated experimentation
Build foundational data science infrastructure: feature store, model governance, monitoring, CI/CD for MLStay hands-on enough to evaluate architecture, hold technical trade-offs, and contribute to high-impact projects
Build the function
Champion data science internally through demos, stakeholder education, and proactive engagement with product and commercial teams
Scale the team as the roadmap demands - ML engineering, data science, MLOpsDevelop the existing team, create career paths, set technical and cultural standards
What the First Year Looks Like3 months:
Data science roadmap defined cross-functionally and signed off. High-impact use cases on the table the business hadn't previously identified. First POCs or MVPs in flight. Data science visibly present in product planning - already shifting from reactive to proactive.
6 months:
Multiple ML/AI use cases shipped or in live evaluation. Experimentation active in at least one product area. Data science achievements visible internally through demos and showcases; early external presence building.
12 months:
Data science is a recognised, embedded function with a track record of delivery. Experimentation is a working discipline used beyond data science. MLOps maturity has stepped up. The team has grown in line with what was needed to get here.
What You Bring Must-Haves Track record of building a data science function from small into something the business relies on - not inheriting one Shipped ML models to production at scale with measurable…
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