Jobs · New Jersey

Director, Quantitative Pharmacology and Pharmacometrics – Oncology

Merck · Rahway, NJ · 1 mo ago
$191k–$300k/yrFull-time

About the role

The Quantitative Pharmacology and Pharmacometrics – Immune/Oncology (QP2-IO) team is part of the Global Clinical Development organization and oversees drug development aspects related to clinical pharmacology and pharmacometrics of oncology drugs from post-PCC to registration.

Responsibilities

  • Serving as an expert representative for QP2 -IO on Oncology development teams.
  • Framing critical questions and strategy for optimizing model-based analyses on programs.
  • Developing and executing model-based analyses including translational PK/PD approaches, population pharmacokinetic models, exposure-response models, clinical trial design simulation, disease progression models, quantitative systems pharmacology (QSP) modeling, and comparator modeling.
  • Strategizing and executing modeling of tumor size and survival.
  • AMaintaining a comprehensive understanding of global regulatory expectations for small molecules and biologics in Oncology, authoring regulatory documents (investigational new drugs/INDs, clinical study reports (CSRs), clinical trial applications (CTDs), and representing QP2-IO at regulatory meetings.
  • Mentoring and/or supervising junior staff to perform the above duties and to develop the above capabilities.

Requirements

  • Minimum Education Required: Ph.D. with at least seven years of pharmaceutical drug development experience relating to: PKPD, pharmacometrics, mathematics, statistics/ biostatistics, or chemical/biomedical engineering.
  • Masters or PharmD, with at least nine years of experience, where “experience” means having a record of increasing responsibility and independence in a similar role in pharmaceutical drug development.

Skills

  • Demonstrated impact with applications of pharmacometrics methods.
  • Experience in IND, NDA and other submissions to global regulatory agencies.
  • Skills in experimental design, mathematical problem solving, critical data analysis/interpretation, and statistics.
  • An exemplary record of increasing responsibility, independence, and demonstrated impact in driving drug development decisions through application of model-based approaches.
  • Proficiency in R, NONMEM, MATLAB, Monolix or other modeling software.
  • Professional working proficiency in written and verbal communication.

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