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Mimica

Head of Machine Learning (Remote - UK/Europe/Americas)

Reposted 3 Days Ago
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In-Office or Remote
Hiring Remotely in United States
Expert/Leader
In-Office or Remote
Hiring Remotely in United States
Expert/Leader
The Head of Machine Learning will manage 9 ML engineers, coordinate projects, contribute to system architecture, and promote team growth. Responsibilities include strategic leadership, project management, and technical mentorship to align ML initiatives with business goals.
The summary above was generated by AI
What we are building

Mimica's mission is to empower enterprises, teams, and individuals to reclaim their most precious resource — time and work more efficiently, with greater purpose and impact.

Our AI-powered task mining observes employee actions across the desktop and categorizes them into detailed process maps. Mimica’s process intelligence highlights inefficiencies, prioritizes improvements based on ROI, recommends the optimal technology for automation (RPA, intelligent document processing, GenAI), and provides a blueprint for building new automations and transforming work.

Where we are in our scale-up journey
We’ve achieved strong product-market fit and are now scaling with intention. You’ll join a 45-person team of Senior+ engineers and Product leaders who prioritise product impact over mere headcount. We have 8 cross-functional teams, including a dedicated Platform team focused on infra & developer experience. We started building proprietary ML before the LLM boom, so we don't just consume models - we train them from the ground up.

Our approach to engineering

  • We prioritize customer needs first

  • We work in small, project-based teams

  • We have flexibility in terms of the problems we work on

  • We own the full lifecycle of our projects

  • We avoid silos and encourage taking up tasks in new areas

  • We balance quality and velocity

  • We have a shared responsibility for our production code

  • We each set our own routine to maximize our productivity

Your mission

You will join us as our Head of Machine Learning, and report to our CTO. You’ll manage a Chapter of 10 Machine Learning Engineers, including 3 Team Leaders and expand the team. You’ll have a mix of People Management and project coordination responsibilities.

You'll understand the strategic direction of the ML team's projects, with the intention to coordinate projects, dependencies, allocate resources, and ensure strategic alignment with business and product goals.

You'll contribute to the architecture and development of our systems by empowering the team through 1:1s, code reviews, and discussions to facilitate the delivery of impactful features. Your leadership will foster a culture of growth, efficiency, and technical excellence, driving the execution of key ML initiatives that support the company’s broader vision.

Part of your day-to-day
  • Lead and nurture a growing team of machine learning engineers, supporting their career development through coaching and mentorship.

  • Leading team OKR discussions, coordinating projects and facilitating team meetings, planning and retros.

  • Collaborate with the CTO, Platform and Product Managers to align team priorities with company OKRs.

  • Collaborate with the People team on recruiting and onboarding talent that matches our values and technical excellence.

  • Act as a sounding board for the team, empowering the team, and support identifying and resolving bottlenecks and efficiency blockers, enabling the team to iterate faster.

  • Drive the development and deployment of ML systems, optimising tools and infrastructure for efficiency, while ensuring timeline and goals are met.

  • Promoting a culture of collaboration and continuous learning, and mentoring team members in their development.

Requirements
  • Strong background in applied AI/ML research, development, and deployment

  • Significant experience in leading and executing machine learning initiatives, particularly in high-growth and large-scale product companies.

  • Proven track record in managing and growing ML Engineers/Data Scientist teams, including hiring, mentoring, and developing talent.

  • Deep understanding of ML engineering practices, including MLOps and data engineering.

  • Expertise in collaborating with Product and Engineering teams to align ML efforts with broader product goals.

  • Strong communication skills to engage with senior leaders, product teams, and engineers in complex technical discussions.

  • Strong analytical and troubleshooting skills - methodically decomposing systems to identify bottlenecks, determine root causes and implement effective solutions.

  • Drive to continually develop your skills, improve team processes and reduce debt.

  • Fluency in English, with effective communication skills – articulating complex ideas, concepts, and trade-offs clearly and getting buy-in for strategic technical decisions.

Bonus
  • Background in successful startups/scale-ups, driving iterative development and rapid delivery.

  • Experience working in a distributed systems environment.

  • Experience with general software design and data protection mechanisms.

What we offer

💰 Generous compensation + stock options - aligned with our internal framework, market data, and individual skills.

🏢 Distributed work: Work from anywhere - fully remote, in our hubs, or a mix.

💻 Company-issued laptop, remote setup stipend, and co-working budget

📍 Flexible schedules and location

☀️ Ample paid time off, in addition to local public holidays

🍼 Enhanced parental leave

🧘‍♀️ Health & retirement benefits

📖 Annual learning & development budget

🌴 Annual workaways and regular virtual & in-person socials

🌍 Opportunity to contribute to groundbreaking projects that shape the future of work

Note: Some benefits may vary depending on location and role

⚠️ Mimica will only contact candidates from an @mimica.ai email address. We do not request banking or sensitive personal information during the recruiting process.

Top Skills

AI
Automated Processes
Data Engineering
Genai
Intelligent Document Processing
Ml
Mlops
Rpa

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