Information technology, software development, data Jobs for Mid-level in Uganda

9 jobs found

Raising The Village

Data Scientist

Mbarara

Uganda

Closed for applications
United Bank of Africa(Uganda)

IT Auditor

Kampala

Uganda

Closed for applications
Compassion International

Information Technology Support Technician II

Kampala

Uganda

Closed for applications
MTN Group

Senior Specialist - Infrastructure Operations

Kampala

Uganda

Closed for applications
Committed To Good (CTG)

ICT Systems Integration Support Technician

Entebbe

Uganda

Closed for applications
Bank of Uganda

Cyber Crime & Forensics Officer

Kampala

Uganda

Closed for applications
Bank of Uganda

Forensics Laboratory Officer

Kampala

Uganda

Closed for applications
Pearl Bank Uganda

Network Administrator

Kampala

Uganda

Closed for applications
Continental ContainerTerminal

Assistant Manager - Information Technology

Mukono

Uganda

Closed for applications

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Centenary Bank (Uganda)

Business Intelligence Analyst

Kampala

Uganda

Closed for applications

Country / Region

Seniority (Information technology, software development, data)

© Fuzu Ltd

Raising The Village

Non-profit + 1 more

Data Scientist

Closed for applications
Job details

Contract Type

Description

Education Qualifications

  • Bachelor's or Master's degree in Computer Science, Data Science, Statistics (Statistical computing )or a related quantitative field.
  • 3+ years of hands-on experience in machine learning and computer vision, with a demonstrable portfolio of deployed models.

Proficiency in:

  • Python (PyTorch or TensorFlow) for deep learning model development.
  • Object detection and image classification frameworks, particularly YOLO architectures (YOLOv8 or later).
  • Data annotation tools and active learning workflows for building labeled datasets.
  • Cloud platforms, specifically AWS, for model training, storage, and deployment.
  • SQL and familiarity with data warehouse environments (Databricks preferred) for integrating model outputs with structured household data.
  • Model deployment and MLOps practices, including CI/CD pipelines and experiment tracking with Weights & Biases or equivalent.
  • Edge deployment optimization (TensorFlow Lite, ONNX) for low-connectivity field environments.
Responsibilities
  • Research, design, and implement image classification and object detection models (including YOLO-based architectures) for automated adoption t across RTV program domains including agriculture, WASH and livestock adoption practices.
  • Build and maintain end-to-end ML training, validation, and test pipelines ensuring model accuracy, reliability, and generalizability to field conditions in low-resource environments.
  • Optimize models for edge deployment in environments with limited connectivity, including TensorFlow Lite integration for mobile and offline use cases.
  • Design and manage image data collection protocols and annotation workflows to produce high-quality labeled datasets for compliance indicator categories across all program domains.
  • Integrate image metadata and classification outputs with the RTV data warehouse (Databricks medallion architecture) for correlation with household progression and adoption metrics.
  • Develop automated adoption classification outputs that map to RTV's binary and weighted adoption scoring frameworks and validate against AHS survey-based assessments.
  • Conduct structured experiments to benchmark model performance across deployment contexts (Uganda, Rwanda, DRC), applying Weights & Biases for experiment tracking and reproducibility.
  • Build and document RESTful APIs to expose model predictions to WorkMate and other consuming field applications.
  • Maintain clear documentation of model architectures, preprocessing pipelines, evaluation metrics, and versioning practices for cross-functional collaboration.


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