Everybody’s got to learn sometime? A causal machine learning evaluation of training programmes for jobseekers in France

IF 2.2 2区 经济学 Q2 ECONOMICS Labour Economics Pub Date : 2024-08-01 DOI:10.1016/j.labeco.2024.102573
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引用次数: 0

Abstract

This paper estimates the heterogeneous impact of three types of vocational training- preparation, qualifying, and combined – on jobseekers’ return to employment using the Modified Causal Forest method. Analysing data from 33,699 individuals over 24 months, it reveals a short-term negative lock-in effect for all programmes, persisting in the medium term for combined training. Only qualifying training shows a positive medium-term effect. Seniors, low-skilled, foreign-born, and those with poor job histories benefit most, while youth and higher education levels benefit less. Targeting foreign-born individuals could significantly enhance programme effectiveness, as indicated by the clustering analysis and optimal policy trees.

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每个人都有学习的时候?法国求职者培训计划的因果机器学习评估
本文采用 "修正因果森林法 "估算了三种类型的职业培训(预备培训、资格培训和综合培训)对求职者重返就业岗位的不同影响。通过对 33,699 人 24 个月的数据进行分析,本文揭示了所有培训项目的短期负锁定效应,其中综合培训的中期效应持续存在。只有资格培训显示出积极的中期效应。老年人、低技能者、外国出生者和工作经历不佳者受益最大,而年轻人和教育程度较高者受益较少。正如聚类分析和最佳政策树所示,针对外国出生的个人可以大大提高计划的有效性。
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来源期刊
Labour Economics
Labour Economics ECONOMICS-
CiteScore
3.60
自引率
8.30%
发文量
142
期刊介绍: Labour Economics is devoted to publishing research in the field of labour economics both on the microeconomic and on the macroeconomic level, in a balanced mix of theory, empirical testing and policy applications. It gives due recognition to analysis and explanation of institutional arrangements of national labour markets and the impact of these institutions on labour market outcomes.
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