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  4. Streamlining the Operation of AI Systems: Examining MLOps Maturity at an Automotive Firm
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Streamlining the Operation of AI Systems: Examining MLOps Maturity at an Automotive Firm

Type
conference paper
Date Issued
2024
Author(s)
Weber, Michael
;
Schniertshauer, Johannes
;
Ag, Audi
;
Przybilla, Leonard
;
Hein, Andreas  
;
Weking, Jörg
;
Krcmar, Helmut
Abstract
Developing and operating AI systems based on machine learning (ML) has unique challenges that render traditional practices inappropriate (e.g., managing data drift). To that end, MLOps emerged as a novel paradigm for managers and teams to develop and operate such ML systems successfully. Organizations currently employ different maturity levels for MLOps, whereas higher maturity typically corresponds to more automated, streamlined, and reliable workflows. However, we have limited insight into factors influencing MLOps maturity in ML projects. Therefore, we conducted a case study on MLOps maturity in three ML projects at an automotive firm. We identified several contextual factors that facilitate or inhibit MLOps maturity, such as the ML model's complexity, the quality of new data, and the appropriateness of available MLOps tools. Our study contributes to research on managing and organizing AI by providing factors that explain the different adoption of MLOps in practice.
Language
English (United States)
Keywords
Machine Learning
MLOps
Artificial Intelligence
Operation
Deployment
HSG Classification
contribution to scientific community
Refereed
Yes
Event Title
Hawaii International Conference on System Sciences
Event Location
Hawaii, US
URL
https://www.alexandria.unisg.ch/handle/20.500.14171/119423
Subject(s)

information managemen...

Division(s)

IWI - Institute of In...

File(s)
Thumbnail Image
Name

Weber et al._2024 HICSS.pdf

Size

658.63 KB

Format

Adobe PDF

Checksum (MD5)

1775d643c55e058697aa8ec721b8c835

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