Data science for social work practice

Author:

Cariceo Oscar1,Nair Murali2,Lytton Jay2

Affiliation:

1. School of Social Work, Universidad Central de Chile, Santiago, Chile

2. Suzanne Dworak-Peck School of Social Work, University of Southern California, Los Angeles, USA

Abstract

Data science is merging of several techniques that include statistics, computer programming, hacking skills, and a solid expertise in specific fields, among others. This approach represents opportunities for social work research and intervention. Thus, practitioners can take advantage of data science methods and reach new standards for quality performances at different practice levels. This article addresses key terms of data science as a new set of methodologies, tools, and technologies, and discusses machine learning techniques in order to identify new skills and methodologies to support social work interventions and evidence-based practice. The challenge related to data sciences application on social work practice is the shift on the focus of interventions. Data science supports data-driven decisions to predict social issues, rather than providing an understanding of reasons for social problems. This can be both a limitation and an opportunity depending on context and needs of users and professionals.

Publisher

SAGE Publications

Subject

Social Sciences (miscellaneous),Sociology and Political Science

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