Senior/staff Data Scientist/ml Engineer

London, ENG, GB, United Kingdom

Job Description

What we are building


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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.

Our approach to engineering


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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

What you will own


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In this role, you will be a member of the ML Chapter and work with the Mapper team. Mimica Mapper is one of our main products that creates intuitive flowcharts that map out user and team workflows. Its architecture includes components designed to detect task similarities. As part of Mapper's continuous development, we aim to automate these components to enhance scalability. You will own experiments and the exploration of complex problems that revolve around the task similarity and improving the use of the Mapper.

Part of your day-to-day


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Design and run experiments to improve our ML processing system, using a mix of classic and deep learning techniques. Write clear technical reports that document experiments and their results. Write clean, readable, and maintainable Python code, assuring best practices. Interface with our internal Process Analyst team to discover opportunities on which parts of the product can be automated, find out pain points and explore automation solutions by leveraging ML Support productionization (although we have a dedicated MLOps Engineer for that!) Actively collaborate and engage in technical discussions with the other Engineers, Product Managers in the team and ML Chapter, to drive the development of the product. Contribute to knowledge sharing and the improvement of our processes.

Requirements


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Strong technical skills in setting up, running, and evaluating experiments using both classic and deep learning-based approaches.

Solid background in tabular data and event data classification.

A

researcher mindset

, with curiosity and rigour in exploring and solving complex problems. Ability to effectively mix classic and deep learning methods, with a clear understanding of when to apply each. Proficiency in supervised and unsupervised learning techniques. Excellent written communication skills, including the ability to produce clear and concise reports.

Strong Python programming skills, emphasising clear, readable code

; while productionization support may be involved, it is not the primary focus. A drive to continually develop your skills, improve team processes, and reduce technical debt Fluency in

English

, with the ability to effectively communicate abstract ideas, complex concepts, and trade-offs

Bonus



Graph ML knowledge Experience designing, building and maintaining data pipelines Experience working in a high-impact, high-ambiguity startup environment, delivering value quickly and iteratively

What we offer


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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 - up to 500 / EUR600 / $650 per year


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



On company equipment: Company-issued equipment (e.g. laptops) is provided for work use and must be returned upon departure, unless otherwise agreed.*

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Job Detail

  • Job Id
    JD3921088
  • Industry
    Not mentioned
  • Total Positions
    1
  • Job Type:
    Full Time
  • Salary:
    Not mentioned
  • Employment Status
    Permanent
  • Job Location
    London, ENG, GB, United Kingdom
  • Education
    Not mentioned