Scientist - Data / Machine Learning
Scientist - Data / Machine Learning

Scientist - Data / Machine Learning

Full-Time 30000 - 50000 ÂŁ / year (est.) No home office possible
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At a Glance

  • Tasks: Develop and maintain machine learning models for rapid pathogen detection using microscopy data.
  • Company: Pictura Bio, an innovative spin-out from the University of Oxford.
  • Benefits: Full-time position with opportunities for growth in a dynamic start-up environment.
  • Why this job: Make a real impact in healthcare by working on cutting-edge diagnostic technology.
  • Qualifications: Degree in relevant field; experience with imaging datasets and ML frameworks preferred.
  • Other info: Collaborate with interdisciplinary teams and engage with real-world experimental data.

The predicted salary is between 30000 - 50000 ÂŁ per year.

Pictura Bio is a well‑funded University of Oxford spin‑out developing a novel diagnostic platform for rapid pathogen detection. Our technology combines fluorescence microscopy with automated image analysis and machine learning to identify pathogens in seconds. The platform is being translated into clinical diagnostic products, initially focused on respiratory infections, with broader applications across infectious disease.

The Machine Learning Scientist will develop, evaluate, and maintain imaging‑based classification models that underpin Pictura Bio’s diagnostic platform. Working closely with assay scientists and engineers, you will analyse microscopy datasets, build robust and reproducible ML pipelines, and translate experimental data into validated diagnostic insights. You will be expected to work with real experimental data, apply rigorous evaluation practices, and clearly communicate results to both technical and non‑technical stakeholders.

Major Accountabilities

  • Develop and maintain algorithms for segmentation, feature extraction, and classification of pathogens in fluorescence microscopy images.
  • Train and evaluate machine learning models for distinguishing viruses, bacteria, and other biological particles.
  • Perform data preprocessing, quality control, and exploratory analysis on microscopy datasets.
  • Work closely with lab scientists to interpret imaging data and feedback insights into assay and imaging design.
  • Build reproducible analysis and ML pipelines with appropriate documentation and version control.
  • Contribute to the integration of image analysis and ML models into production software.
  • Support performance evaluation using appropriate metrics, test datasets, and robustness checks.
  • Generate figures, reports, and summaries to support internal decision‑making and external communication.
  • Collaborate with software engineers to ensure models are maintainable, testable, and deployable.
  • Stay up to date with advances in image analysis, computer vision, and ML for microscopy and diagnostics.
  • Undertake other reasonable duties consistent with the role and level.

Ideal Background

Education

  • Bachelor’s or Master’s degree in Computer Science, Data Science, Machine Learning, Bioinformatics, Biomedical Engineering, Physics, or a related field. PhD is desirable but not essential.

Experience

  • Experience working with imaging‑based datasets, ideally fluorescence microscopy images.
  • Experience training ML models (e.g., PyTorch, TensorFlow, scikit‑learn).
  • Experience contributing to software that is part of a product (deployed tools, internal platforms, or commercial software) is highly desirable.
  • Experience working with laboratory‑generated or experimental data is an advantage.

Skills

  • Strong Python skills and scientific computing (NumPy, Pandas, SciPy).
  • Experience with image processing and computer vision (OpenCV, scikit‑image).
  • Familiarity with deep learning for images (CNNs, U‑Net‑style segmentation).
  • Ability to build reproducible, well‑documented data and ML pipelines.
  • Experience with version control and collaborative development (Git).
  • Clear communication skills and ability to work effectively in interdisciplinary teams.
  • Comfortable working with messy, real‑world experimental data rather than curated benchmark datasets.
  • Pragmatic and outcome‑focused, with an interest in turning analysis into working product features.
  • Methodical and detail‑oriented, with a strong emphasis on reproducibility and robustness.
  • Able to balance research exploration with engineering discipline and deadlines.
  • Curious and willing to engage with wet‑lab scientists to understand data generation and experimental constraints.
  • Communicates clearly with both technical and non‑technical colleagues.
  • Enjoys working in a fast‑moving start‑up environment where priorities may evolve.
  • Proactive problem‑solver who is comfortable taking ownership of projects.

Seniority level: Entry level

Employment type: Full‑time

Scientist - Data / Machine Learning employer: PicturaBio

Pictura Bio is an exceptional employer, offering a dynamic work environment that fosters innovation and collaboration at the intersection of machine learning and biomedical science. With a strong focus on employee growth, we provide opportunities for professional development and hands-on experience with cutting-edge technology in a supportive team culture. Located in Oxford, our start-up atmosphere encourages creativity and adaptability, making it an ideal place for those passionate about making a meaningful impact in the field of diagnostics.
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Contact Detail:

PicturaBio Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Scientist - Data / Machine Learning

✨Tip Number 1

Network like a pro! Reach out to people in the industry, especially those at Pictura Bio or similar companies. Attend meetups, webinars, or conferences related to data science and machine learning. You never know who might have a lead on your dream job!

✨Tip Number 2

Show off your skills! Create a portfolio showcasing your projects, especially those involving imaging datasets or machine learning models. Share it on platforms like GitHub or your personal website, and don’t forget to link it in your applications.

✨Tip Number 3

Prepare for interviews by brushing up on your technical knowledge and soft skills. Practice explaining complex concepts in simple terms, as you’ll need to communicate with both technical and non-technical folks at Pictura Bio.

✨Tip Number 4

Apply through our website! It’s the best way to ensure your application gets seen. Tailor your CV and cover letter to highlight your experience with microscopy datasets and machine learning, making sure to align with what Pictura Bio is looking for.

We think you need these skills to ace Scientist - Data / Machine Learning

Machine Learning
Fluorescence Microscopy
Data Preprocessing
Image Processing
Computer Vision
Python
NumPy
Pandas
SciPy
PyTorch
TensorFlow
scikit-learn
OpenCV
Version Control (Git)
Clear Communication Skills

Some tips for your application 🫡

Tailor Your CV: Make sure your CV reflects the skills and experiences that match the job description. Highlight your experience with imaging-based datasets and machine learning models, as these are key for us at Pictura Bio.

Craft a Compelling Cover Letter: Use your cover letter to tell us why you're passionate about the role and how your background fits with our mission. Don’t forget to mention any relevant projects or experiences that showcase your problem-solving skills!

Showcase Your Technical Skills: Be specific about your technical abilities, especially in Python, machine learning frameworks, and image processing. We want to see how you can contribute to our diagnostic platform right from the start!

Apply Through Our Website: We encourage you to apply directly through our website. It’s the best way for us to receive your application and ensures you’re considered for the role. Plus, it shows your enthusiasm for joining our team!

How to prepare for a job interview at PicturaBio

✨Know Your Tech

Make sure you brush up on your knowledge of machine learning frameworks like PyTorch and TensorFlow. Be ready to discuss how you've used these tools in past projects, especially with imaging datasets. This will show that you're not just familiar with the theory but have practical experience too.

✨Showcase Your Problem-Solving Skills

Prepare examples of how you've tackled challenges in data preprocessing or model training. Think about specific instances where you had to deal with messy data or unexpected results. This will demonstrate your ability to think critically and adapt in a fast-paced environment.

✨Communicate Clearly

Practice explaining complex concepts in simple terms. You might be asked to present your findings to non-technical stakeholders, so being able to break down your work into digestible pieces is key. Use visuals or analogies if it helps clarify your points.

✨Collaborate and Engage

Be prepared to discuss how you've worked with interdisciplinary teams in the past. Highlight any experiences where you collaborated with lab scientists or software engineers. This shows that you value teamwork and can effectively communicate across different fields.

Scientist - Data / Machine Learning
PicturaBio

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