Facilitating transmuters' acquisition of data scientist knowledge based on their educational backgrounds: state-of-the-practice and challenges

操作化 独创性 探索性研究 集合(抽象数据类型) 领域(数学) 数据科学 价值(数学) 知识管理 计算机科学 实证研究 公共关系 社会学 政治学 定性研究 社会科学 程序设计语言 纯数学 数学 认识论 机器学习 哲学
作者
Muhammad Ramzan,Saif Ur Rehman Khan,Inayat Ur Rehman,Muhammad Habib ur Rehman,Ehab Nabiel Al-khannaq
出处
期刊:Library Hi Tech [Emerald Publishing Limited]
卷期号:41 (4): 1119-1144 被引量:5
标识
DOI:10.1108/lht-08-2020-0203
摘要

Purpose In recent years, data science has become a high-demand profession, thereby attracting transmuters (individuals who want to change their profession due to industry trends) to this field. The primary purpose of this paper is to guide transmuters in becoming data scientists. Design/methodology/approach An exploratory study was conducted to uncover the challenges faced by data scientists according to their educational backgrounds. An extensive set of responses from 31 countries was received. Findings The results reveal that skill requirements and tool usage vary significantly with educational background. However, regardless of differences in academic background, the data scientists surveyed spend more time analyzing data than operationalizing insight. Research limitations/implications The collected data are available to support replication in various scenarios, for example, for use as a roadmap for those with an educational background in art-related disciplines. Additional empirical studies can also be conducted specific to geographical location. Practical implications The current work has categorized data scientists by their fields of study making it easier for universities and online academies to suggest required knowledge (courses) according to prospective students' educational background. Originality/value The conducted study suggests the required knowledge and skills for transmuters to acquire, based on their educational background, and reports a set of motivational factors attracting them to adopt the data science field.
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