JH

Research & Data Associate

Jhpiego Verified Enterprise New Delhi
Unpaid
Exp: No fixed duration
Full Time
0-Ghosting Guarantee
Takes 30 seconds

Job Description & Scope

Description Jhpiego is a nonprofit global health leader and Johns Hopkins University affiliate that is saving lives, improving health, and transforming futures. We partner with governments, health experts, and local communities to build the skills and systems that guarantee a healthier future for women and families. Jhpiego translates the best science and practices into moments of care that can mean the difference between life and death for women and families. The moment a woman gives birth, the moment a midwife helps a newborn to breathe. Through our partnerships, we are revolutionizing health care for the world s most disadvantaged and vulnerable people. In India, Jhpiego works across various states in close collaboration with national and state governments, providing technical assistance in the areas of family planning, maternal and child health, strengthening human resources for health, and non-communicable diseases. These programs are funded by USAID, the Bill Melinda Gates Foundation, the David Lucile Packard Foundation, GIZ, the Children s Investment Fund Foundation (CIFF), and other anonymous donors. We are looking for a highly motivated and detail-oriented individual to assist in our research and learning efforts for the RISE (Reaching Impact Saturation and Epidemic Control) project. The successful candidate will work under the Senior Monitoring, Evaluation, Research, and Learning Officer, focusing on quantifying the impact of our programs on infectious disease outbreaks through rigorous mathematical/epidemiological modeling and advanced statistical techniques. Responsibilities End-to-end outbreak modelling independently code, calibrate and run basic compartmental, agent-based models or other statistical models (e.g., SIR/SIRS/SEIR, time-series regressions) to estimate outbreaks averted, life saves from specific interventions and forecast near-term trends. Use counterfactual scenarios to quantify the impact of interventions by comparing modeled outcomes with and without specific response strategies and simulate the impact of resource allocation on outbreak outcomes to inform resource planning. Data acquisition cleaning source routine surveillance and programme datasets, write reproducible scripts to clean/merge them, and document data dictionaries. Incorporate demographic factors (e.g., age, comorbidities, population density) and epidemiological data (e.g., case fatality rates, transmission rates) into models to improve the accuracy of lives saved estimates for specific populations and adjust models to account for India-specific health system constraints and regional variations in outbreak dynamics Parameter estimation uncertainty analysis fit models to data with likelihood-based or simple Bayesian methods; produce confidence/credible intervals and sensitivity checks. Regular analytic reports generate clear tables, graphs, and slide decks that translate model outputs into actionable insights for programme managers and donors. Generate reports and visualizations summarizing lives saved and infections averted, tailored for policymakers, donors, and program teams Conduct analytics (Bayesian/MLE calibration, uncertainty quantification, ensemble forecasting) and translate results into dashboards and briefs for programme teams and donors. Evidence scans conduct rapid literature reviews on modelling methods and intervention impact; keep a living repository of key parameters and priors. Perform systematic literature reviews and landscape analyses of outbreak-response interventions. Draft manuscripts, policy briefs, and donor reports; shepherd them through peer review. Tool development maintenance build and update simple R Markdown / Python notebooks or Shiny/Dash dashboards so non-technical colleagues can explore scenarios. Documentation reproducibility maintain well-commented code, version control (Git), and workflow descriptions to ensure analyses can be audited or handed over smoothly. Team liaison capacity sharing explain modelling assumptions and outputs to epidemiologists, programme staff, and leadership; train pr

Job Summary

Company
Jhpiego
Location
New Delhi
Salary Range
Unpaid
Experience
No fixed duration
Verification
Government Verified Recruiter
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Research & Data Associate
Unpaid
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