Location

Binyamina, Israel

Head of Data Science

OncoHost is a technology-driven leader in precision medicine, advancing patient outcomes through innovative, clinically validated diagnostic solutions. The company’s proprietary PROphet® platform leverages high-dimensional proteomic pattern analysis to support immunotherapy decision-making for patients with non-small cell lung cancer (NSCLC) using a single blood sample.

Validated in a large-scale, global clinical trial spanning more than 40 sites and 1,700 patients, PROphet® enables physicians to predict treatment efficacy, assess toxicity risk, and uncover biological mechanisms of resistance — supporting more informed, data-driven immuno-oncology decisions.

 

Role Overview

The Head of Data Science will lead OncoHost’s data sciences trategy, driving the development of predictive, biologically grounded AI models that support clinical decision-making. This role combines scientific leadership, hands-on technical expertise, and cross-functional influence.

Reporting to the CTO, this leader will shape the long-term data science roadmap, build and mentor a high-performing team, and ensure scientific rigor across all computational activities.

 

Leadership & Strategy

  • Define and execute the company’s data science vision, strategy, and multi-year roadmap
  • Build, manage, mentor, and develop a team of Data Scientists, including goal setting, performance evaluation, and professional growth
  • Partner closely with senior management and cross-functional teams (bioinformatics, translational medicine, product, scientific affairs, commercial) to drive data-driven decision making
  • Establish best practices, methodologies, and quality standards across all data science activities

 

Technical & Scientific Ownership

  • Lead the development and deployment of advanced machine learning and statistical models to predict cancer patients’ response to treatment
  • Provide technical leadership and oversight for the analysis of clinical, proteomic, and other multi-omics data
  • Guide the design and define workflows for experimentation, validation, and interpretation of supervised and unsupervised learning models
  • Ensure model robustness, reproducibility, validation, and statistical rigor

Cross-Functional Impact & Communication

  • Collaborate with experts in proteomics, biology and clinical research to translate insights into mechanisms of treatment resistance
  • Convert complex analytical outputs into clear, actionable insights for scientific, clinical, product and management stakeholders
  • Lead documentation of R&D activities in high-quality technical and scientific reports

Real-World Data & Modeling Environment

  • Design and validate ML algorithms with thousands ofpotential features and small development and validation cohorts
  • Identify potential biases in the data (confoundingfactors, measurement biases, analytic factors, partial data etc.) and propermethods for mitigating them
  • Align with restrictive regulation, to allow theutilization of the algorithms for guiding life-saving clinical treatment
  • Thrive in a fast-moving, innovation-driven environmentwith evolving scientific priorities

 

Required Qualifications

  • MSc in quantitative field (Computer Science, Mathematics, Physics, Bioinformatics, or related)
  • PhD – an advantage

 

Core Technical Expertise (Mandatory)

  • Proven experience leading or mentoring professional data science teams
  • Strong background in Machine Learning and applied Data Science
  • Expertise in supervised and unsupervised learning approaches
  • Deep understanding of statistics and probability
  • Proficiency in Python

 

Domain Expertise (Advantage)

  • LLMs
  • Computational biology
  • Biology

 

Personal Attributes

  • Strong interpersonal and communication skills, with the ability to operate effectively in cross-functional environments
  • Independent, self-driven, and accountable
  • Critical thinker with strong problem-solving abilities
  • Highly motivated, curious, and able to adapt in a fast-paced setting

Work Model

  • Full-time position: 5 days per week
  • Hybrid Model: 4 days onsite, 1 day remote

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OncoHost is a technology-driven leader in precision medicine, advancing patient outcomes through innovative, clinically validated diagnostic solutions. The company’s proprietary PROphet® platform leverages high-dimensional proteomic pattern analysis to support immunotherapy decision-making for patients with non-small cell lung cancer (NSCLC) using a single blood sample.

Validated in a large-scale, global clinical trial spanning more than 40 sites and 1,700 patients, PROphet® enables physicians to predict treatment efficacy, assess toxicity risk, and uncover biological mechanisms of resistance — supporting more informed, data-driven immuno-oncology decisions.

 

Role Overview

The Head of Data Science will lead OncoHost’s data sciences trategy, driving the development of predictive, biologically grounded AI models that support clinical decision-making. This role combines scientific leadership, hands-on technical expertise, and cross-functional influence.

Reporting to the CTO, this leader will shape the long-term data science roadmap, build and mentor a high-performing team, and ensure scientific rigor across all computational activities.

 

Leadership & Strategy

  • Define and execute the company’s data science vision, strategy, and multi-year roadmap
  • Build, manage, mentor, and develop a team of Data Scientists, including goal setting, performance evaluation, and professional growth
  • Partner closely with senior management and cross-functional teams (bioinformatics, translational medicine, product, scientific affairs, commercial) to drive data-driven decision making
  • Establish best practices, methodologies, and quality standards across all data science activities

 

Technical & Scientific Ownership

  • Lead the development and deployment of advanced machine learning and statistical models to predict cancer patients’ response to treatment
  • Provide technical leadership and oversight for the analysis of clinical, proteomic, and other multi-omics data
  • Guide the design and define workflows for experimentation, validation, and interpretation of supervised and unsupervised learning models
  • Ensure model robustness, reproducibility, validation, and statistical rigor

Cross-Functional Impact & Communication

  • Collaborate with experts in proteomics, biology and clinical research to translate insights into mechanisms of treatment resistance
  • Convert complex analytical outputs into clear, actionable insights for scientific, clinical, product and management stakeholders
  • Lead documentation of R&D activities in high-quality technical and scientific reports

Real-World Data & Modeling Environment

  • Design and validate ML algorithms with thousands ofpotential features and small development and validation cohorts
  • Identify potential biases in the data (confoundingfactors, measurement biases, analytic factors, partial data etc.) and propermethods for mitigating them
  • Align with restrictive regulation, to allow theutilization of the algorithms for guiding life-saving clinical treatment
  • Thrive in a fast-moving, innovation-driven environmentwith evolving scientific priorities

 

Required Qualifications

  • MSc in quantitative field (Computer Science, Mathematics, Physics, Bioinformatics, or related)
  • PhD – an advantage

 

Core Technical Expertise (Mandatory)

  • Proven experience leading or mentoring professional data science teams
  • Strong background in Machine Learning and applied Data Science
  • Expertise in supervised and unsupervised learning approaches
  • Deep understanding of statistics and probability
  • Proficiency in Python

 

Domain Expertise (Advantage)

  • LLMs
  • Computational biology
  • Biology

 

Personal Attributes

  • Strong interpersonal and communication skills, with the ability to operate effectively in cross-functional environments
  • Independent, self-driven, and accountable
  • Critical thinker with strong problem-solving abilities
  • Highly motivated, curious, and able to adapt in a fast-paced setting

Work Model

  • Full-time position: 5 days per week
  • Hybrid Model: 4 days onsite, 1 day remote

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Send your CV to hr@oncohost.com and we’ll be in touch if an appropriate position becomes available!