Machine Learning and Data Science Techniques for Effective Government Service Delivery

Machine Learning and Data Science Techniques for Effective Government Service Delivery

Release Date: March, 2024|Copyright: © 2024 |Pages: 344
DOI: 10.4018/978-1-6684-9716-6
ISBN13: 9781668497166|ISBN10: 1668497166|EISBN13: 9781668497180
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Description & Coverage
Description:

We live in an era defined by an avalanche of data, and the challenge lies not merely in its accumulation, but in gleaning meaningful insights from this digital deluge. This monumental task is particularly significant in the realm of government service delivery, were efficient and responsive governance hinges upon informed decision-making. As traditional methods struggle to cope with the sheer magnitude of information, a new paradigm is imperative—one that leverages the potent constructive collaboration of data science and machine learning. A redesign of the existing models of such a scale require a sound understanding of the mechanics of these technologies and their applications, which is exactly where the formidable reference book, Machine Learning and Data Science Techniques for Effective Government Service Delivery, plays a pivotal role.

Amidst the intricate labyrinth of modern governance, this book emerges as a beacon of solution-driven insight. Rooted in the understanding that data is emerging as a currency in the 21st century, it navigates the terrain of data science and machine learning techniques, elevating the mechanics of government service delivery. As government bodies strive to meet the ever-evolving needs of citizens, these advanced methodologies offer a compelling antidote to inefficiencies that have plagued traditional systems. By providing a comprehensive roadmap to harness the potential of data-driven decision-making, the book equips professionals, researchers, and policymakers with the tools to cultivate a new era of effective, citizen-centric governance.

Tailored to a diverse audience, encompassing experts in technology, academia, government, and beyond, this book bridges the gap between theory and actionable practice. With an array of topics ranging from foundational concepts to innovative applications, it offers a holistic understanding of how data science and machine learning can revolutionize service delivery. From forecasting to privacy safeguards, from scalable frameworks to intelligent insights, this book encapsulates the spectrum of possibilities that develop when innovation meets governance. For those seeking to navigate the uncharted waters of modern governance, this book holds as an indispensable guide, ushering in a future where data-driven precision paves the way for a more effective and responsive government.

Coverage:

The many academic areas covered in this publication include, but are not limited to:

  • Artificial Intelligence
  • Data Analysis
  • Effective Governance
  • Government Services
  • Machine Learning
  • Policy Implementation
  • Predictive Modeling
  • Smart Cities
  • Technological Innovation
  • Urban Planning
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Editor/Author Biographies
Olalekan Samuel Ogunleye has worked as the head of Mobile Development, Strategy and Business Innovations at Eyethenticate Computervision Lab, Johannesburg, South Africa. He was a Senior Mobile and Enterprise Application Developer at the Council for Scientific and Industrial Research (CSIR), Pretoria, South Africa. He was also the Academic Content Developer for Google Sub-Saharan Africa, covering Eight Countries (Nigeria, South Africa, Cameroon, Kenya, Uganda, Ghana and Cote D' Ivoire). During his time at CSIR, Dr Olalekan became interested in and developed cybersecurity expertise, particularly in fighting Cyber Crime, Artificial Intelligence, System Development and Implementation, ICDL for Organization Development, Internet of Things, ICT4D for Social Development. His significant IT and ICT interest has centred around Artificial Intelligence, Machine Learning, Data Science and the Internet of Things. He is a social Media Enthusiast and regular. Dr Olalekan has B. Tech (Hons) degree in Computer Science and Engineering from the Ladoke Akintola University of Technology, MSc in Computer Science from University of Cape Town (UCT), Master of Business Administration (MBA) degree from Management College of Southern Africa (MANCOSA). He obtained his PhD in Information Systems from the University of Cape Town, where he investigated and developed a Framework and Model for Supporting Government Service Delivery using Mobile Technology. He has worked as a Senior Lecturer at the School of Information Technology, Monash University, ICT Lecturer for MBA at the MANCOSA, Research Consultant on ICT research at the Faculty of ICT, Tshwane University of Technology, and Technical Research Implementation Consultant for the Department of the Electrical Engineering Mangosuthu University of Technology, all in South Africa. Further to this, Dr Olalekan has consulted for various organizations in Botswana, Nigeria, Ghana, Uganda, South Africa, Swaziland, and Zambia on Cybersecurity Implementation and has developed various Machine Learning Models for the majority of these organizations.
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