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Faculty (faculty.ai)

Lead Data Scientist

Posted One Month Ago
Be an Early Applicant
Hybrid
London, England, GBR
Entry level
Hybrid
London, England, GBR
Entry level
Lead technical direction for complex data science and machine learning projects, design production-grade solutions, define roadmaps, manage technical risk, support sales engagements, advise customers, establish best practices, and mentor data scientists and cross-functional teams.
The summary above was generated by AI
Why Faculty?


We established Faculty in 2014 because we thought that AI would be the most important technology of our time. Since then, we’ve worked with over 350 global customers to transform their performance through human-centric AI. You can read about our real-world impact here.

We don’t chase hype cycles. We innovate, build and deploy responsible AI which moves the needle - and we know a thing or two about doing it well. We bring an unparalleled depth of technical, product and delivery expertise to our clients who span government, finance, retail, energy, life sciences and defence.

Our business, and reputation, is growing fast and we’re always on the lookout for individuals who share our intellectual curiosity and desire to build a positive legacy through technology.

AI is an epoch-defining technology, join a company where you’ll be empowered to envision its most powerful applications, and to make them happen.

About the Team

Bringing medicine to patients is complex, expensive and high-risk. Faculty’s Life Science’s team is concentrated on building AI solutions which optimise the research and commercialisation of life-changing therapies.

We partner with major pharma firms, academic research centres and regulators to design and deliver solutions which address critical healthcare challenges, and help to democratise health for all.

About the role

As a Lead Data Scientist, you'll take on a pivotal, entrepreneurial role, functioning as the technical expert who thrives on complexity and commercial impact. You will be responsible for setting the technical direction and ensuring the high-quality, scalable delivery of our most challenging, high-impact projects.
This position combines deep expertise in machine learning with strategic oversight to define project roadmaps, manage technical risk, and architect reliable solutions. Your focus will be on driving innovation, mentoring cross-functional teams, and actively shaping both our technical standards and long-term customer relationships.

What you'll be doing:
  • Setting the technical direction for complex, business-critical projects and expertly balancing trade-offs between speed, innovation, and reliability.

  • Designing and implementing reliable, production-grade technical solutions, ensuring comprehensive documentation of architectures and specifications.

  • Defining project problems, developing clear roadmaps, and overseeing end-to-end delivery across multi-disciplinary workstreams.

  • Leading technical scoping and feasibility studies for high-value sales opportunities and strategic customer engagements.

  • Managing relationships and communications with technical stakeholders, fostering trust and aligning technical solutions with shared long-term commercial goals.

  • Driving the adoption of best practices, shared resources, and robust technical processes across the wider Data Science craft.

  • Mentoring and developing other data scientists and team members, actively contributing to the growth and technical excellence of the organisation.

Who we're looking for:
  • You have proven project management expertise, capable of dividing complex, ill-defined problems into actionable, clearly defined workstreams with timelines you can defend.

  • You possess strong customer leadership skills, able to act as a trusted technical advisor and drive long-term strategic relationships with demanding clients.

  • You bring depth of expertise in at least one machine learning domain and strong technical breadth across the entire data science landscape.

  • You are a skilled technical leader, proficient in mentoring individuals, managing teams (including other managers), and rolling out impactful tools and workflows.

  • You are adept at managing ill-defined, high-risk tasks, consistently delivering innovative and practical outcomes under commercial pressure.

  • You excel at cross-functional collaboration, effectively aligning technical strategy with Engineering, Commercial, and Infrastructure teams.

  • You have experience extending technical oversight to business unit-level initiatives, using your vision to influence and contribute to organisational success.

The Interview Process
  1. Talent Team Screen (30 minutes)

  2. Introduction to the team (30 minutes)

  3. Take Home Technical Assessment

  4. Technical Interview (90 minutes)

  5. Commercial Interview (60 minutes)

Our Recruitment Ethos

We aim to grow the best team - not the most similar one. We know that diversity of individuals fosters diversity of thought, and that strengthens our principle of seeking truth. And we know from experience that diverse teams deliver better work, relevant to the world in which we live. We’re united by a deep intellectual curiosity and desire to use our abilities for measurable positive impact. We strongly encourage applications from people of all backgrounds, ethnicities, genders, religions and sexual orientations.

If you don’t feel you meet all the requirements, but are excited by the role and know you bring some key strengths, please don't hesitate in applying as you might be right for this role, or other roles. We are open to conversations about part-time hours.

A note on AI: we're happy for you to use it for research and interview prep, but please don't use it to generate answers during live interviews. We also use an AI note-taker (Metaview) in interviews so interviewers can stay present (which you can opt out of just let us know,) and every application is reviewed by a human, never decided by AI.

HQ

Faculty (faculty.ai) London, England Office

160 Old Street, London, United Kingdom, EC1V 9BW

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