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FF08 Data, analytics and AI senior dataITenterpriseengineering

MLOps Engineer

Även känt som: ML Platform Engineer

Builds and maintains the infrastructure with which machine learning models are trained, deployed and monitored, and automates retraining when models grow stale.

The mlops engineer ensures data scientists' models go into production reliably and repeatably, with automated pipelines for training, validation and rollout. Unlike the machine learning engineer who focuses on a specific model, they build the platform on which multiple models run at once. Selection often focuses on knowledge of ml models, while recognising that a pipeline silently uses stale data instead of training fresh is the biggest source of unnoticed quality decay in practice.

Kompetenser som ska mätas

Dessa är beteende- och förmågekonstruktionerna i denna profil. För varje konstruktion anges vilken frågehrmforce-frågeformulär som mäter den.

Kompetenser som ska mätas Målnivå hrmforce instrument Bedömningsmetod Beteendeankare på målnivå
Numerical reasoning
Knockout
N5 Ability Scan Cognitive ability test Sees in complex number series which assumptions determine the outcome and sets the calculation logic that others in the organisation follow.
Curiosity and exploring
Kompetens (50-ramverk): Learning Ability
N4 Big Fifty, 15PF, Motivation Personality questionnaire Gathers information on new methods outside the own team and brings findings into the work meeting unprompted.
Dealing with ambiguity
Kompetens (50-ramverk): Flexibility
N4 Big Fifty, Mental Resilience (4C), Competency Check Situational Judgement Test Formulates explicit assumptions when information is missing, proceeds on that basis and revises the approach once new data arrives.

Kort profil

De tio viktigaste kompetenserna i denna profil. Den fullständiga profilen med alla kompetenser, beteendeankare och utvärderingsmetoder finns i nedladdningsfilen.

T Kompetens Målnivå Vikt Knockout Bedömningsmetod
A Numerical reasoning N5 5 ja Cognitive ability test
V Data analysis N5 5 ja Work sample test
K Basic statistical interpretation N5 5 ja Knowledge test
K Machine learning fundamentals N4 5 ja Knowledge test
V Critical thinking and source evaluation N5 4 nej Work sample test
V Visual communication and data storytelling N5 4 nej Work sample test
V Data visualisation N5 4 nej Work sample test
V Assessing data quality N5 4 ja Work sample test
V Reporting and dashboard building N5 4 nej Work sample test
V Data modelling N5 4 nej Work sample test

Se alla 25 kompetenser i den fullständiga profilen

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