Leykun Getaneh
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Hi, I’m Leykun Getaneh

Data Scientist · Statistician · Data Analyst

I bring 10+ years of experience in research, analytics, and data science, applying R, Python, and modern machine learning and deep learning methods to solve challenges in disease forecasting, predictive modeling, and public health decision-making. My work focuses on turning complex data into actionable insights and decision-support tools.

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Portrait of Leykun Getaneh

10+ Years of experience

6+ Data products deployed

5+ Languages & tools

2 Peer-reviewed publications

What I do

From raw data to real-world decisions

I combine statistical rigor with engineering to deliver analytics that public health teams can act on.

Modeling & Forecasting

Statistical, machine learning, and deep learning models for disease prediction and time-series forecasting — including transformer-based approaches like Temporal Fusion Transformers.

Tidymodels TensorFlow PyTorch TFT

Public Health Analytics

Analytics pipelines and decision-support systems for surveillance, early warning, and demographic health data — from woreda level to national scale.

EWARS HDSS Surveillance

Interactive Data Products

Dashboards, prediction apps, and automated reports that make results accessible and reproducible for non-technical stakeholders.

R Shiny Streamlit Quarto Plotly

Selected work

Featured projects

A few products spanning disease forecasting, public health analytics, HDSS, and dashboards.

Malaria Forecasting Dashboard

Disease Forecasting

Malaria Forecasting Dashboard

Interactive forecasting system for public health monitoring — real-time visualization of forecasted incidence supporting woreda, regional, and national decisions. Built with R / Python Shiny.

Live application

Public Health · HDSS

impactHDSS Analytics Platform

Analytics & Visualization lead for a multi-site Health & Demographic Surveillance System — building pipelines and dashboards that turn longitudinal population data into insight.

See in resume

Micronutrient Deficiency Prediction app

Machine Learning

Childhood Micronutrient Deficiency

ML prediction tool estimating childhood micronutrient deficiency from demographic and health features — an XGBoost model built with the Tidymodels framework.

Live application

COVID-19 Ethiopia Dashboard

Dashboard

COVID-19 Dashboard: Ethiopia

A comprehensive view of the COVID-19 epidemic in Ethiopia — epidemiological trends, case statistics, and visualizations for evidence-based response. Built with R and Quarto.

View dashboard

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Background

Experience & education

Experience

Data Scientist National Data Management & Analytics Center (NDMC), EPHI Jan 2025 – Present

Lecturer · Data Scientist Wollo University Sep 2016 – Present

Education

MSc in Statistics Addis Ababa University, Ethiopia Sep 2010 – Jan 2013

BSc in Statistics University of Gondar, Ethiopia Sep 2006 – Jul 2008

Core stack

R Python SAS Stata SPSS Git

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© 2025 Leykun Getaneh

Data Scientist · Statistician · Data Analyst

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