Applied Data Scientist

Intodna S.A

Kraków

On-site

PLN 140,000 - 220,000

Full time

4 days ago
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Benefits offered by this job

Stock options
Private healthcare
On-site gym

Job summary

intoDNA S.A. is seeking an Applied Data Scientist to lead quantitative analyses for STRIDE, our platform for direct DNA damage detection.

You will own analyses for live clinical and internal projects, developing new methods when existing approaches don’t fit, and collaborating with Project Owners and clients. You will work on complex endpoints, tissue samples, and multi-parameter readouts, applying advanced statistics and machine learning where appropriate, and mentoring other analysts in a

Qualifications

  • Master’s or PhD in a quantitative or life science field with strong quantitative component.
  • Around 3+ years of hands-on quantitative analysis of microscopy or biomedical imaging data in industry or research.
  • Strong Python for full analysis workflow (pandas, NumPy, SciPy, scikit-image, matplotlib/seaborn) and Git for version control.
  • Advanced applied statistics beyond t-tests/ANOVA: experimental design, power/sample size, hierarchical models, multiple comparisons, effect sizes.
  • Proven experience developing and validating a new analysis method from scratch.
  • Experience with fluorescence/confocal microscopy and 3D image stacks; image segmentation/feature extraction.
  • Ability to translate biological questions into analysis plans and communicate results clearly.
  • Ability to manage multiple projects and priorities; able to say when something is not achievable.
  • Proficient in English (written and spoken).

Responsibilities

  • Own the analytically demanding end of projects: non-standard endpoints, novel readouts, complex designs, multi-parameter analyses, tissue samples.
  • Lead analytical workstream of clinical projects by integrating STRIDE readouts with patient outcome data.
  • Advise on study scope, endpoints, and sample sizes; interpret what data can conclude.
  • Apply robust statistics to structured data and produce publication-quality figures and client-ready reports.
  • Develop and validate new analysis methods and metrics with clear documentation.
  • Collaborate with Data Scientists to turn methods into permanent platform features.
  • Serve as escalation point for analytical questions and mentor junior analysts.

Skills

Python ecosystem
Advanced statistics
Microscopy data analysis
Data wrangling
Scientific communication
Git version control

Education

Master’s or PhD in quantitative or life sciences

Tools

Jupyter
Git
AWS
scikit-image
scikit-learn

Job description

Would you like to work on something fascinating and meaningful?

At intoDNA, we develop STRIDE, the first platform technology for direct detection of DNA damage. It has been successfully used by leading biotech and pharmaceutical companies and renowned academic groups to accelerate their drug development efforts.

We’re looking for an Applied Data Scientist to join our Data Science & Analysis team. Clients increasingly bring us questions that require non-standard analysis — new assay readouts, unusual experimental designs, tissue samples, multi-parameter endpoints, and clinical studies where STRIDE results must be reconciled with patient outcome data. This role owns those analyses, and turns the recurring ones into validated methods the wider team can reuse.

This is a delivery role throughout. You’ll work on live commercial and clinical projects — the complex end of our portfolio — as well as internal R&D projects, working directly with Project Owners and, where useful, their clients. New analytical methods are developed here because a project needs them, not in separate research time: when no existing approach fits the question, building one is how you deliver it.

This role suits someone strong at quantitative analysis and applied statistics, who has developed analytical methods rather than only applied them, and who wants that work anchored to a real question and a real deliverable. You will also be the person analysts come to when a method or statistics question goes beyond the standard playbook.

  • Own the analytically demanding end of our project portfolio: non-standard endpoints, novel assay readouts, unusual experimental designs, multi-parameter analyses, and tissue-based samples
  • Own the analytical workstream of clinical projects — integrating STRIDE readouts with clinical and patient outcome data to support the science team’s work on STRIDE’s predictive value
  • Advise Project Owners at scoping on whether a question is answerable with the data proposed, what endpoints and sample sizes are needed, and what the analysis can and cannot conclude
  • Apply statistically sound analysis to hierarchically structured data (cells within images, images within samples, samples within subjects), and produce publication-quality figures and client-ready reporting
  • Develop and validate new analysis methods where a project needs one and none exists — derived metrics, classification schemes, scoring approaches, validation strategies — and document them before the project closes, so another analyst can apply them unaided and their limitations are clear
  • Collaborate with our Data Scientists to turn valuable methods into permanent features of the analysis platform
  • Act as the analytical escalation point for analysts — reviewing approaches, answering method and statistics questions, and mentoring on analytical judgment
What you'll work with
  • Data: Single-cell quantification from fluorescence microscopy — signal intensity, morphological measurements, and derived biomarker scores across thousands of cells per project. Increasingly, clinical samples with associated patient metadata and outcome data
  • Platform: intoDNA’s internal microscopy image analysis system, developed in-house and actively evolving
  • Tools: Python (pandas, NumPy, SciPy, scikit-image, scikit-learn), Jupyter, Git, AWS
  • Collaboration: Project Owners and the science team on live projects; Data Scientists, with whom you’ll turn new methods into permanent platform features; analysts you’ll support and mentor
  • Direction: Work on clinical studies that support intoDNA’s development of STRIDE as a predictive biomarker and companion diagnostic
Requirements
Must have
  • Master’s or PhD in a quantitative or life science field with a strong quantitative component (bioinformatics, computational biology, biophysics, biomedical engineering, physics, applied mathematics, or related)
  • Around 3+ years of hands‑on experience in quantitative analysis of microscopy or other biomedical imaging data, in industry or a research/core-facility setting
  • Strong Python for the full analysis workflow (pandas, NumPy, SciPy, scikit-image, and matplotlib/seaborn or equivalent), and Git for version control
  • Advanced applied statistics, beyond t-tests and ANOVA: experimental design, power and sample size reasoning, hierarchical or mixed‑effects models, multiple comparison correction, effect size estimation. Able to explain why a method is appropriate, not only how to run it
  • Demonstrated experience developing and validating a new analysis method, metric, or scoring approach from scratch — not only applying existing pipelines
  • Working understanding of fluorescence and confocal microscopy and 3D image stacks, and of image segmentation and feature extraction and their common failure modes
  • Ability to work directly with non‑computational scientists: translating a biological question into an analysis plan, and communicating results and their limitations honestly
  • Ability to manage your own priorities across several concurrent projects, and to say when something is not achievable in the time available
  • Professional working proficiency in English (written and verbal)
Nice to have
  • Machine learning applied to image or single‑cell data, supervised classification in particular (scikit-learn; PyTorch a bonus)
  • Experience with tissue image analysis or digital pathology (FFPE, IHC/IF, whole‑slide imaging)
  • Clinical or translational data analysis: survival analysis, ROC/AUC, biomarker cut-off determination, or predictive biomarker validation
  • Familiarity with DNA damage response, DNA repair, or cell cycle biology
  • Experience mentoring or reviewing the work of more junior analysts
  • Experience in a GxP or otherwise regulated environment
What we offer
  • Opportunity to make a real impact in an early‑stage, highly innovative company
  • Collaborative work in a stimulating and friendly environment
  • Participation in Employee Stock Options Plan
  • Benefits package, including private medical healthcare and an on‑site gym

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