Job Openings Remote | Computational Pharmacokinetics & Systems Biology Scientist — $60–$75/hour

About the job Remote | Computational Pharmacokinetics & Systems Biology Scientist — $60–$75/hour

We are sharing a specialised part-time consulting opportunity for computational pharmacokinetics and systems biology professionals with strong expertise in PK/PD modelling, biological simulation, SBML-based workflows, scientific Python, and research-grade computational software.

This role focuses on designing challenging computational problems based on authentic pharmacokinetics and systems biology workflows. Selected experts will build graduate-level scientific tasks involving simulation, model interrogation, experiment design, and quantitative reasoning, then test and refine those tasks to ensure they require genuine scientific problem-solving.

Key Responsibilities

Computational Pharmacokinetics

  • Design research-level problems involving compartmental pharmacokinetic and PK/PD models
  • Develop scenarios involving dosing, concentration-time behaviour, exposure, and response
  • Build computational workflows requiring multi-step simulation and quantitative interpretation
  • Create problems where correct solutions depend on appropriate model setup and scientific reasoning
  • Identify realistic edge cases and failure modes in pharmacokinetic simulations

Systems Biology Modelling

  • Develop problems involving biochemical networks, enzyme kinetics, and dynamic biological systems
  • Work with mechanistic models represented through SBML-based frameworks
  • Design simulation tasks involving pathway behaviour, parameter changes, and system responses
  • Create scenarios requiring interpretation of complex model dynamics
  • Ensure tasks reflect authentic computational systems biology research workflows

Scientific Software Workflows

  • Build problems using tools such as libRoadRunner, Tellurium, and SBML-based software
  • Write and validate computational setups using specialised scientific libraries
  • Test software behaviour across realistic and challenging modelling scenarios
  • Incorporate tool-specific limitations, edge cases, and numerical considerations
  • Evaluate whether solutions use scientific software correctly rather than relying on superficial reasoning

Simulation & Experiment Design

  • Develop tasks requiring strategic selection of simulations, queries, or computational experiments
  • Create problems where important information must be inferred from partial model outputs
  • Design workflows requiring candidates to determine what to measure or simulate next
  • Evaluate efficiency and scientific validity of alternative investigation strategies
  • Build problems where careful experiment design is central to reaching the correct conclusion

Python & Computational Validation

  • Write Python-based problem setups, reference calculations, oracle functions, and solution validators
  • Develop reproducible computational pipelines for scientific tasks
  • Verify numerical outputs and expected solution behaviour
  • Diagnose discrepancies caused by implementation, modelling, or numerical issues
  • Maintain reproducibility across Linux-based remote compute environments

Problem Design & Refinement

  • Create original graduate-level computational problems grounded in real research practice
  • Develop both exact-answer tasks and open-ended investigation workflows
  • Test tasks against advanced computational systems
  • Analyse model performance and refine tasks to achieve the intended difficulty
  • Ensure challenge comes from scientific reasoning rather than unnecessary complexity or brute-force computation

Reference Solutions & Evaluation

  • Produce authoritative reference solutions and supporting computational outputs
  • Define objective criteria for correctness, completeness, and scientific validity
  • Validate that tasks have well-supported expected outcomes
  • Distinguish genuine domain expertise from surface-level pattern matching
  • Refine evaluation criteria based on testing and reviewer feedback

Ideal Profile

  • Graduate-level expertise in pharmacokinetics, pharmacology, systems biology, computational biology, bioengineering, or a closely related STEM field
  • MS, PhD, or equivalent research experience preferred
  • Proven hands-on proficiency with at least one relevant scientific software environment, including libRoadRunner, Tellurium, or other SBML-based tools
  • Practical experience with compartmental PK/PD modelling, enzyme kinetics, or systems biology simulations
  • Strong Python programming skills
  • Experience writing code for genuine research, scientific, or professional workflows
  • Understanding of numerical behaviour, software limitations, and edge cases in computational modelling
  • Comfortable working in Linux/terminal environments and remote compute sandboxes
  • Ability to work independently and refine computational problems based on testing and feedback
  • Research publications, open-source contributions, or professional work demonstrating relevant software expertise are highly valued
  • Experience with benchmark design, scientific teaching, exam or problem-set development is advantageous
  • Familiarity with computational reproducibility and containerised environments is advantageous

Engagement Details

  • Part-time independent contractor engagement
  • Fully remote
  • Minimum availability of approximately 15–20 hours per week
  • Flexible scheduling based on project requirements
  • Compensation: $60–$75/hour
  • Work may include computational problem design, simulation development, reference-solution creation, testing, and validation
  • Projects may be extended, shortened, or concluded based on project needs and performance
  • Work must be completed without using confidential or proprietary information belonging to any employer, client, institution, or other third party
  • H1-B and STEM OPT support is unavailable for this engagement

About the Platform

This opportunity is available through 24-MAG LLC. We connect experienced professionals with remote consulting opportunities across technical, evaluation, and project-based workstreams.

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