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Administration by Algorithm? Public Management meets Public Sector Machine Learning

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  • Veale, Michael
  • Brass, Irina

Abstract

Public bodies and agencies increasingly seek to use new forms of data analysis in order to provide 'better public services'. These reforms have consisted of digital service transformations generally aimed at 'improving the experience of the citizen', 'making government more efficient' and 'boosting business and the wider economy'. More recently however, there has been a push to use administrative data to build algorithmic models, often using machine learning, to help make day-to-day operational decisions in the management and delivery of public services rather than providing general policy evidence. This chapter asks several questions relating to this. What are the drivers of these new approaches? Is public sector machine learning a smooth continuation of e-Government, or does it pose fundamentally different challenge to practices of public administration? And how are public management decisions and practices at different levels enacted when machine learning solutions are implemented in the public sector? Focussing on different levels of government: the macro, the meso, and the 'street-level', we map out and analyse the current efforts to frame and standardise machine learning in the public sector, noting that they raise several concerns around the skills, capacities, processes and practices governments currently employ. The forms of these are likely to have value-laden, political consequences worthy of significant scholarly attention.

Suggested Citation

  • Veale, Michael & Brass, Irina, 2019. "Administration by Algorithm? Public Management meets Public Sector Machine Learning," SocArXiv mwhnb, Center for Open Science.
  • Handle: RePEc:osf:socarx:mwhnb
    DOI: 10.31219/osf.io/mwhnb
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    References listed on IDEAS

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    Cited by:

    1. Kuziemski, Maciej & Misuraca, Gianluca, 2020. "AI governance in the public sector: Three tales from the frontiers of automated decision-making in democratic settings," Telecommunications Policy, Elsevier, vol. 44(6).
    2. Emily Keddell, 2019. "Algorithmic Justice in Child Protection: Statistical Fairness, Social Justice and the Implications for Practice," Social Sciences, MDPI, vol. 8(10), pages 1-22, October.
    3. Lena Ulbricht & Karen Yeung, 2022. "Algorithmic regulation: A maturing concept for investigating regulation of and through algorithms," Regulation & Governance, John Wiley & Sons, vol. 16(1), pages 3-22, January.
    4. Aristotelis Mavidis & Dimitris Folinas, 2022. "From Public E-Procurement 3.0 to E-Procurement 4.0; A Critical Literature Review," Sustainability, MDPI, vol. 14(18), pages 1-23, September.
    5. Young Song, Annie & Lee, Seunghyeon & Wong, S.C., 2023. "A machine learning approach to analyzing spatiotemporal impacts of mobility restriction policies on infection rates," Transportation Research Part A: Policy and Practice, Elsevier, vol. 176(C).
    6. Katzenbach, Christian & Ulbricht, Lena, 2019. "Algorithmic governance," Internet Policy Review: Journal on Internet Regulation, Alexander von Humboldt Institute for Internet and Society (HIIG), Berlin, vol. 8(4), pages 1-18.
    7. Katzenbach, Christian & Ulbricht, Lena, 2019. "Algorithmic governance," EconStor Open Access Articles and Book Chapters, ZBW - Leibniz Information Centre for Economics, vol. 8(4), pages 1-18.
    8. König, Pascal D. & Wenzelburger, Georg, 2021. "The legitimacy gap of algorithmic decision-making in the public sector: Why it arises and how to address it," Technology in Society, Elsevier, vol. 67(C).
    9. Duică Mircea Constantin & Vasciuc Săndulescu Cristina Gabriela & Panagoreț Dragoș, 2024. "The Use of Artificial Intelligence in Project Management," Valahian Journal of Economic Studies, Sciendo, vol. 15(1), pages 105-118.

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