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About the Role
We are looking for an expert in risk and resilience of the built environment to help advance how physical climate risk is translated into real-world financial impacts. You will work closely with scientists, engineers, and data experts to build sophisticated loss and resilience models that quantify what those hazards mean for buildings and infrastructure around the world. These models are a critical link between physical and financial risk, enabling our customers to understand not only where risk exists, but what it could mean financially—and how investments in resilience and adaptation can reduce that risk. This is a highly interdisciplinary role at the intersection of engineering, resilience, materials science, cost estimation, statistics, and data science.
Responsibilities
- Connect physical climate risk to financial risk by developing custom loss models that quantify impacts to buildings, infrastructure, and other assets globally, integrating them with First Street’s hazard models.
- Model damage, recovery, and economic impacts by developing estimates of structural damage, repair costs and timelines, downtime, and indirect impacts using approaches including engineering first principles, cost estimation, statistical methods, and machine learning.
- Turn imperfect data into actionable models by analyzing historical loss and observational datasets, identifying data limitations and quality-control issues, and developing technically sound approaches to address them.
- Validate model performance and quantify uncertainty through statistical analysis of model predictions, observational data, sensitivities, and uncertainty to ensure outputs are scientifically rigorous and decision-useful.
- Translate research into scalable modeling approaches by evaluating academic literature, engineering research, industry standards, and emerging methodologies and incorporating relevant insights into quantitative loss and resilience models.
- Characterize the global built environment by analyzing building codes, exposure datasets, construction practices, materials, occupancy types, and regional differences to inform vulnerability and loss model development across diverse geographies.
- Model the value of resilience and adaptation by developing property-level adaptation scenarios that allow customers to understand how protective measures can reduce damage and downtime and evaluate the potential return on investment of resilience interventions.
Requirements
- Ph.D. preferred, or a Master’s degree with 3 - 5+ years of relevant experience in structural engineering, civil engineering, operations research, resilience engineering, catastrophe risk, or a related quantitative field.
- Structural Degree or Civil Engineering (with a structural focus).
- Strong technical foundation in vulnerability and loss modeling, statistics, probabilistic methods, and quantitative analysis, with the ability to translate complex physical processes into robust analytical models.
- Hands-on experience developing risk, vulnerability, or loss models for buildings and infrastructure, using engineering-based approaches, statistical methods, machine learning, or a combination of these techniques.
- Demonstrated ability to develop loss models from the ground up, from defining the underlying methodology and sourcing appropriate data through calibration, validation, uncertainty quantification, and implementation.
- Experience working with multi-hazard and catastrophe risk data, including hazard intensity measures, building-level damage and loss observations, exposure datasets, construction characteristics, and repair or construction cost data.
- Experience developing scalable and generalizable catastrophe risk models that can be applied across large portfolios, diverse asset types, and multiple geographic regions.
- Advanced proficiency in Python or comparable scientific programming languages, with experience developing reliable, maintainable, and reproducible analytical workflows.
- A rigorous, science-driven approach to model development, with a strong emphasis on accuracy, reliability, transparency, validation, and reproducibility.
- Strong understanding of the current research landscape in resilience, vulnerability, catastrophe risk, and loss modeling, including relevant engineering standards, technical guidelines, and emerging methodologies.
- Experience applying machine learning and AI techniques to engineering, risk, resilience, or other scientific modeling problems.
- Experience analyzing large and complex datasets in high-performance computing environments, either on-premises or using cloud platforms such as AWS, GCP, or Azure.
- Proficiency with collaborative software development practices and version control systems such as Git.
- A strong record of scientific research and publication, demonstrating the ability to conduct rigorous technical work and communicate complex methodologies and findings clearly.
- Experience building property-level loss models from scratch, working across multiple natural hazards, or developing models that connect physical damage and recovery to financial outcomes will be particularly valuable.
Skills
- Python
- Git
- Machine Learning
- AI
- AWS
- GCP
- Azure
- Statistics
- Probabilistic Methods
- Quantitative Analysis
- Engineering First Principles
- Cost Estimation
- Data Science
Location
- Global
Work Type
- Flexible working arrangements
Experience Level
- 3 - 5+ years of relevant experience
Education Level
- Ph.D. preferred
- Master’s degree
Salary/Compensations
- $102,000 - $133,000 / year
- Eligible for annual bonus
Benefits
- Transparent compensation schemes
- Comprehensive employee benefits, tailored to your location
- Flexible working arrangements
- Advanced technology
- Collaborative workspaces
- Access to our Learning@MSCI platform
- AI Learning Center
- LinkedIn Learning Pro
- Tailored learning opportunities for ongoing skills development
- Multi-directional career paths
- Professional growth and development
- New challenges
- Internal mobility
- Expanded roles
- Eight Employee Resource Groups (All Abilities, Asian Support Network, Black Leadership Network, Climate Action Network, Hola! MSCI, Pride & Allies, Women in Tech, and Women’s Leadership Forum)
About the Company
- MSCI strengthens global markets by connecting participants across the financial ecosystem with a common language.
- Our research-based data, analytics and indexes, supported by advanced technology, set standards for global investors and help our clients understand risks and opportunities so they can make better decisions and unlock innovation.
- We serve asset managers and owners, private-market sponsors and investors, hedge funds, wealth managers, banks, insurers and corporates.
- At MSCI we are passionate about what we do, and we are inspired by our vision – to power better decisions.
- You’ll be part of an industry-leading network of creative, curious, and entrepreneurial pioneers.
- This is a space where you can challenge yourself, set new standards and perform beyond expectations for yourself, our clients, and our industry.
Equal Opportunity
- MSCI Inc. is an equal opportunity employer.
- It is the policy of the firm to ensure equal employment opportunity without discrimination or harassment on the basis of race, color, religion, creed, age, sex, gender, gender identity, sexual orientation, national origin, citizenship, disability, marital and civil partnership/union status, pregnancy (including unlawful discrimination on the basis of a legally protected parental leave), veteran status, or any other characteristic protected by law.
- MSCI is also committed to working with and providing reasonable accommodations to individuals with disabilities.
- If you are an individual with a disability and would like to request a reasonable accommodation for any part of the application process, please email Disability.Assistance@msci.com and indicate the specifics of the assistance needed.
- Please note, this e-mail is intended only for individuals who are requesting a reasonable workplace accommodation; it is not intended for other inquiries.