Research activities may include pharmacometric modeling, quantitative systems pharmacology (QSP), mechanistic and Bayesian modeling, artificial intelligence and machine learning methods, statistical ...
Research activities may include pharmacometric modeling, quantitative systems pharmacology (QSP), mechanistic and Bayesian modeling, artificial intelligence and machine learning methods, statistical ...
Research activities may include pharmacometric modeling, quantitative systems pharmacology (QSP), mechanistic and Bayesian modeling, artificial intelligence and machine learning methods, statistical ...
Research activities may include pharmacometric modeling, quantitative systems pharmacology (QSP), mechanistic and Bayesian modeling, artificial intelligence and machine learning methods, statistical ...
... of quantitative models that support enterprise strategy, policy, financial planning, and ... Designs, develops, and oversees the execution of sophisticated models, algorithms, and decision ...
... of quantitative models that support enterprise strategy, policy, financial planning, and ... Designs, develops, and oversees the execution of sophisticated models, algorithms, and decision ...
Designs, develops, and oversees the execution of sophisticated models, algorithms, and decision ... quantitative modeling and energy system analytics. This position follows a hybrid work model ...
Designs, develops, and oversees the execution of sophisticated models, algorithms, and decision ... quantitative modeling and energy system analytics. This position follows a hybrid work model ...
Senior Associate, BESS Modeling & Structuring
San Francisco, CA · Hybrid
$137K - $177K/yr
In this role, you will be building Clearway's internal quantitative modeling platform (CWENQuant), developing advanced BESS dispatch optimization models, and directly impacting major commercial ...
Senior Associate, BESS Modeling & Structuring
San Francisco, CA · Hybrid
$137K - $177K/yr
In this role, you will be building Clearway's internal quantitative modeling platform (CWENQuant), developing advanced BESS dispatch optimization models, and directly impacting major commercial ...
Senior Associate, BESS Modeling & Structuring
San Francisco, CA · On-site
$137K - $177K/yr
In this role, you will be building Clearway's internal quantitative modeling platform (CWENQuant), developing advanced BESS dispatch optimization models, and directly impacting major commercial ...
Senior Associate, BESS Modeling & Structuring
San Francisco, CA · On-site
$137K - $177K/yr
In this role, you will be building Clearway's internal quantitative modeling platform (CWENQuant), developing advanced BESS dispatch optimization models, and directly impacting major commercial ...
Dewiz - Quantitative Researcher
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As the ecosystem continues to expand, we're looking for a Quantitative Researcher to help design the models and strategies that optimize execution, inventory management, and capital efficiency across ...
Develop, backtest, and optimize quantitative trading strategies with rigorous statistical validation * Interpret complex model outputs and communicate alpha generation mechanisms to portfolio ...
Quick apply
Develop, backtest, and optimize quantitative trading strategies with rigorous statistical validation * Interpret complex model outputs and communicate alpha generation mechanisms to portfolio ...
Develop, backtest, and optimize quantitative trading strategies with rigorous statistical validation * Interpret complex model outputs and communicate alpha generation mechanisms to portfolio ...
Develop, backtest, and optimize quantitative trading strategies with rigorous statistical validation * Interpret complex model outputs and communicate alpha generation mechanisms to portfolio ...
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Building and maintaining automated validation, testing, and governance pipelines for quantitative ... Knowledge of finance or risk modeling is preferred but not required About MSCI What we offer you
Quantitative Researcher - Model Scaling
San Francisco, CA · On-site
$144K - $187K/yr
Building and maintaining automated validation, testing, and governance pipelines for quantitative ... Knowledge of finance or risk modeling is preferred but not required About MSCI What we offer you
Quantitative Researcher - Model Scaling
$144K - $187K/yr
Building and maintaining automated validation, testing, and governance pipelines for quantitative ... Knowledge of finance or risk modeling is preferred but not required About MSCI What we offer you
Quantitative Researcher - Model Scaling
$144K - $187K/yr
Building and maintaining automated validation, testing, and governance pipelines for quantitative ... Knowledge of finance or risk modeling is preferred but not required About MSCI What we offer you
Quantitative Researcher - Model Scaling
$144K - $187K/yr
M.S. or Ph.D. in Finance, Statistics, Computer Science, Engineering, or other quantitative ... Knowledge of finance or risk modeling is preferred but not required What we offer you * Salary ...
Quantitative Researcher - Model Scaling
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BlackRock's Model Portfolio Solutions (MPS) team develops quantitative investment strategies to deliver consistent outperformance for clients seeking tactical, outcome-oriented, and/or strategic ...
Associate, Quantitative Developer, Model Portfolio Solutions (MPS), Multi-Asset Strategies & Solu...
San Francisco, CA · On-site
BlackRock's Model Portfolio Solutions (MPS) team develops quantitative investment strategies to deliver consistent outperformance for clients seeking tactical, outcome-oriented, and/or strategic ...
Associate, Quantitative Developer, Model Portfolio Solutions (MPS), Multi-Asset Strategies & Solu...
San Francisco, CA · On-site
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Burlingame, CA · On-site
$180K - $225K/yr
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AI Performance Modeling Engineer
Burlingame, CA · On-site
$180K - $225K/yr
Python & Quantitative Modeling: Strong Python skills with experience writing, validating, and calibrating numerical or quantitative models in code. * Computer Architecture Fundamentals: Solid grasp ...
AI Performance Modeling Engineer
Burlingame, CA · On-site
$180K - $225K/yr
Python & Quantitative Modeling: Strong Python skills with experience writing, validating, and calibrating numerical or quantitative models in code. * Computer Architecture Fundamentals: Solid grasp ...
Quick apply
AI Performance Modeling Engineer
Burlingame, CA · On-site
$180K - $225K/yr
Python & Quantitative Modeling: Strong Python skills with experience writing, validating, and calibrating numerical or quantitative models in code. * Computer Architecture Fundamentals: Solid grasp ...
AI Performance Modeling Engineer
Burlingame, CA · On-site
$180 - $225/hr
Python & Quantitative Modeling: Strong Python skills with experience writing, validating, and calibrating numerical or quantitative models in code. * Computer Architecture Fundamentals: Solid grasp ...
AI Performance Modeling Engineer
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$180 - $225/hr
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AI Performance Modeling Engineer
Burlingame, CA · On-site
$180K - $225K/yr
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AI Performance Modeling Engineer
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Expert, Quantitative Power System Analyst
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Senior, Quantitative Power System Analyst
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Senior, Quantitative Power System Analyst
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Quantitative Modeling information
See Berkeley, CA salary details
$120.2K - $138.2K
15% of jobs
$138.2K - $156.2K
7% of jobs
$161.8K is the 25th percentile. Wages below this are outliers.
$156.2K - $174.2K
9% of jobs
$174.2K - $192.2K
14% of jobs
The median wage is $200.4K / yr.
$192.2K - $210.2K
12% of jobs
$210.2K - $228.3K
14% of jobs
$235.6K is the 75th percentile. Wages above this are outliers.
$228.3K - $246.3K
12% of jobs
$246.3K - $264.3K
7% of jobs
$264.3K - $282.3K
5% of jobs
$282.3K - $300.3K
5% of jobs
$300.3K - $318.3K
0% of jobs
$120.2K
$208.2K
$318.3K
How much do quantitative modeling jobs pay per year?
What is a quantitative modeling?
A Quantitative Modeling job involves using mathematical, statistical, and computational techniques to analyze data and construct models that help businesses make informed decisions. Professionals in this field work in finance, risk management, economics, and other industries to develop predictive models, optimize strategies, and assess uncertainties. They often use programming languages like Python, R, or MATLAB, along with machine learning and statistical methods, to solve complex problems.
What are typical daily tasks and projects for someone in a quantitative modeling role?
In a Quantitative Modeling position, your daily activities usually include analyzing large datasets, building and validating predictive models, and developing algorithms to solve business or financial problems. You might spend time coding, running simulations, and interpreting model outputs to inform strategy or risk assessment. Collaboration is common—you'll often work with data scientists, business analysts, or subject matter experts to refine models and ensure they're aligned with organizational goals. The work is intellectually stimulating and fast-paced, with opportunities to see your analytical insights directly impact decision-making.
What are the key skills and qualifications needed to thrive in the quantitative modeling position, and why are they important?
To excel in Quantitative Modeling, a strong foundation in mathematics, statistics, and data analysis is essential, often complemented by a degree in a quantitative field such as mathematics, finance, engineering, or physics. Proficiency in programming languages like Python, R, MATLAB, or statistical software, as well as familiarity with data visualization tools and financial modeling certifications (such as CFA or FRM), is highly valued. Effective quantitative modelers possess strong problem-solving abilities, attention to detail, and the ability to communicate complex findings clearly to both technical and non-technical stakeholders. These skills enable accurate, data-driven decision-making and the creation of robust predictive models in business, finance, or technology sectors.
What does a quantitative modeler do?
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Cities near Berkeley, CA with the most Quantitative Modeling job openings:

Senior Staff Scientist-Quantitative Modeling, AI & Pharmacometrics
San Francisco, CA • On-site
Full-time
Re-posted 22 days ago
University Of California San Francisco rating
7.8
Based on 13 frontline employees who took The Breakroom Quiz
232nd of 621 rated colleges and universities
Job description
Job Summary:
Applies advanced computational, computer science, data science, statistical, and quantitative modeling principles, together with domain expertise in pharmacology, drug development, and translational science, to perform research and technology development supporting model-informed drug development (MIDD). Responsibilities include the design, development, implementation, validation, and application of computational models, machine learning approaches, simulation frameworks, and quantitative decision-support tools used to advance drug regimen development and clinical translation. The position integrates diverse preclinical, clinical, and real-world datasets to develop predictive models that support regimen optimization, dose selection, trial design, and translational decision-making. Research activities may include pharmacometric modeling, quantitative systems pharmacology (QSP), mechanistic and Bayesian modeling, artificial intelligence and machine learning methods, statistical analyses, and development of computational workflows and scientific software. This specialty exists for positions whose primary responsibility is to conduct independent quantitative research and use computational and data science technologies to advance biomedical and translational research.
About the Role
The Savic Integrated Pharmacology Laboratory at UCSF is seeking a Ph.D. level Quantitative Scientist, Pharmacometrician, Computational Scientist, Data Scientist, or Translational Modeler to play a scientific leadership role within the PReDiCTR-TB Consortium, a global collaboration accelerating next-generation tuberculosis (TB) treatment regimens.
This role sits at the forefront of model-informed drug development (MIDD), AI-enabled translational science, and quantitative decision-making for infectious diseases. The successful candidate will help shape quantitative strategies that directly influence TB regimen design, dose optimization, translational prediction, and development decisions across academia, industry, and regulatory stakeholders.
We are particularly interested in intellectually curious, self-directed scientists who thrive at the intersection of computational science, biology, engineering, pharmacology, econometrics, and real-world decision-making. This is not a traditional support role. This is an opportunity to help define how AI, quantitative modeling, and translational science reshape infectious disease drug development globally.
What You'll Work On
You will contribute to high-impact translational and computational research programs that may include:
- Model-informed drug development (MIDD) strategies for TB regimen optimization
- AI-driven drug and regimen design
- Quantitative systems pharmacology (QSP)
- Translational PK/PD and mechanistic modeling
- Bayesian and probabilistic decision frameworks
- Clinical trial simulation and optimal design
- Toxicokinetics and translational safety modeling
- Pharmacogenomics and precision medicine approaches
- Multi-scale integration of preclinical, clinical, and real-world datasets
- Synthetic experiments and simulation-driven regimen prioritization
- Scalable computational pipelines and scientific software development
Key Responsibilities
- Lead or contribute to quantitative modeling and simulation strategies for TB drug regimen development
- Build and implement computational frameworks that support translational and clinical decision-making
- Integrate multi-source datasets including preclinical, animal, clinical, and real-world data
- Develop predictive models that improve regimen selection, dose optimization, and translational fidelity
- Influence modeling strategy across a multi-institutional international consortium
- Communicate complex quantitative insights to scientific, clinical, operational, and strategic stakeholders
- Contribute to publications, consortium deliverables, and scientific presentations
- Collaborate across academia, industry, and regulatory environments
- Mentor junior scientists and help foster an interdisciplinary quantitative research culture
Who We're Looking For
We are seeking scientists who:
- Think independently and challenge assumptions constructively
- Enjoy solving difficult translational and quantitative problems
- Are comfortable operating across disciplines
- Can move between theory, computation, biology, and decision-making
- Want to build impactful models rather than simply analyze datasets
- Are excited by the opportunity to influence real-world global health outcomes
- We strongly encourage applicants from adjacent quantitative disciplines who are interested in expanding into pharmacometrics and translational modeling.
Preferred Scientific Backgrounds
Candidates may come from one or more of the following fields:
- Pharmacometrics
- Computational Biology
- Systems Pharmacology
- Pharmacogenomics
- Econometrics
- Biostatistics
- Machine Learning / AI
- Scientific Computing
- Bioinformatics
- Toxicokinetics
- Applied Mathematics
- Physics
- Engineering
- Computer Science
- Decision Science
- Quantitative Pharmacology
Important Note About Qualifications
We are not looking for candidates who possess every possible technical skill listed in this description. PReDiCTR-TB is intentionally designed as an interdisciplinary consortium where impactful innovation emerges from teams with complementary expertise. We highly value candidates with deep strength in one or several relevant domains who are excited to collaborate across disciplines and expand their quantitative toolkit.
Candidates with strong expertise in the following areas are particularly encouraged to apply, even if they do not have formal training across all areas of pharmacometrics:
- Pharmacogenomics
- Econometrics
- AI/ML-driven drug design
- Scientific Python programming
- Toxicokinetics
- QSP
- Bayesian modeling
- Translational PK/PD
- Computational infrastructure
Department Overview:
The Savic Integrated Pharmacology Laboratory in the Department of Bioengineering and Therapeutic Sciences at the University of California, San Francisco (UCSF) is a global leader in model-informed drug development (MIDD) for infectious diseases. The laboratory develops and applies quantitative approaches, including pharmacometrics, quantitative systems pharmacology (QSP), machine learning, translational pharmacology, and mechanistic modeling, to accelerate the development of optimized treatment regimens for tuberculosis (TB), HIV, malaria, and other diseases affecting global health. The laboratory leads and coordinates the Preclinical Design and Clinical Translation of Regimens for Tuberculosis (PReDiCTR-TB) Consortium, an international collaboration that integrates computational science, translational pharmacology, clinical data, and quantitative decision science to improve the efficiency and success of TB drug development. Through the use of predictive modeling, simulation, artificial intelligence, and advanced analytics, the consortium supports regimen selection, dose optimization, trial design, and translational decision-making across the drug development lifecycle. The Savic Lab maintains a highly collaborative and interdisciplinary research environment that brings together pharmacometricians, computational scientists, data scientists, engineers, clinicians, and biologists to address complex challenges in infectious disease drug development. The laboratory collaborates extensively with academic institutions, government agencies, nonprofit organizations, and pharmaceutical and biotechnology partners worldwide to translate scientific discoveries into improved patient outcomes.
Responsibilities
DUTIES & ESSENTIAL JOB FUNCTIONS
Identify the functions or tasks that employees in the job perform. The essential functions should state the purpose of the work and the results to be accomplished, rather than how the function is performed. Of the tasks listed, what percentage of time is devoted to each? The more time employees spend on a function, the more likely it is that the function is essential. Generally, include those functions that account for 10% or more of the work, i.e., key items that contribute significantly to the achievement of the job. The functions should add up to 100%.
of time
Essential Function (Yes/No)
Key Responsibilities
(To be completed by Supervisor)
30
Yes
Quantitative Modeling & Simulation
Lead development of PK/PD, mechanistic, Bayesian, QSP, and AI-enabled models
Design predictive frameworks for TB regimen optimization
Develop translational strategies linking preclinical and clinical data
25
Yes
Computational Research & Data Integration
Integrate multi-source datasets
Develop computational workflows
Apply machine learning and statistical methods
15
Yes
Scientific Leadership
Guide modeling strategy
Collaborate with external investigators
Influence scientific decision making
15
Yes
Publications, Grants & Scientific Communication
Manuscripts
Conference presentations
Grant development
15
Yes
Mentoring & Technical Leadership
Mentor trainees
Lead interdisciplinary project teams
Establish best practices
0
0
0
0
0
0
100%
(To update total %, enter the amount of time in whole numbers (without the % symbol - e.g., 15, 20) then highlight the total sum (e.g., 1%) at the bottom of the column and press F9. The total sum should add up to 100%.)
Qualifications
Required Qualifications
- Bachelor's degree in Computer / Computational / Data Science, or Domain Sciences with computer / computational / data specialization or equivalent experience.
- Minimum 5 years relevant experience
- Advanced knowledge of pharmacometrics, quantitative pharmacology, statistical modeling, and computational science
- Demonstrated expertise in model-informed drug development (MIDD)
- Experience developing mechanistic, PK/PD, Bayesian, or machine learning models
- Advanced programming skills in Python and/or R
- Ability to integrate large-scale biological, clinical, and translational datasets
- Demonstrated scientific leadership and independent research capability
- Ability to communicate complex quantitative concepts to scientific and non-scientific audiences
- Experience managing multiple concurrent research projects
Preferred Qualifications
- Master's degree in Computer / Computational / Data Science, or Domain Sciences with computer / computational / data specialization preferred.
- Postdoctoral or industry experience in quantitative drug development
- QSP, AI/ML
- Pharmacogenomics, Toxicokinetics
- Clinical trial simulation, Infectious disease modeling
- TB experience, Regulatory interactions
- Grant writing experience
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