Saturday 12:45–13:30 in Intermediate

Happiness inside a job: a social network analysis

Guillem Duran Ballester, Jose Berengueres

Audience level:
Intermediate

Description

In this talk, we will show how to analyze social network data from a mobile phone application to predict employee turnover and employee happiness. We will look into the process of extracting new features from a dataset using social network analysis techniques. We will also show how these features can be visualized and used to boost machine learning models.

Abstract

In this talk, we will show how to analyze social network data to predict employee turnover and employee happiness. This talk is a summary of different notebooks about social network analysis that will be available on Github. Please note that all the methodology and details we are using, are explained in depth in the notebooks.

We will cover the following topics:

We will also review common mistakes that can happen during the modeling process and, how to prevent invalid data from getting leaked into your machine learning models. To conclude we compare the merits of using a Python framework versus R Language in terms of development time and computational performance. Data set provided by myhappyforce.com

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