Data Scientist - Automation & Innovation Department

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MidFull-time·B2B
#331951·Dodano około miesiąc temu·18
Źródło: T-Mobile
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Tech Stack / Keywords

Data ScienceMachine LearningPythonTensorFlowPyTorchBig DataSparkHadoop

Firma i stanowisko

T-Mobile is hiring a Data Scientist to work in the Automation & Innovation Department, focusing on telecommunications data analysis and machine learning solutions.


Wymagania

  • Minimum 3 years of proven industry experience in data science or applied machine learning.
  • Strong programming skills in Python.
  • Expert knowledge of supervised and unsupervised machine learning methods.
  • Hands-on experience with ML libraries and frameworks such as Scikit-Learn, TensorFlow, PyTorch.
  • Proficient with big data tools (e.g., Spark, Hadoop) and orchestration tools.
  • Solid foundation in data analytics, data visualization, data mining, statistics, and probability theory.
  • Experience with SQL and relational databases.
  • Familiar with agile methodologies and software development practices (Git, JIRA, Confluence).
  • Experience working in cloud environments (Data Robot, AWS and GCP are a plus).
  • Understanding of big data ecosystems and ETL processes.
  • Nice to have - previous experience working with telecom datasets (e.g., network KPIs, customer behavior).
  • Strong problem-solving skills and a proactive, detail-oriented mindset.
  • Excellent communication skills with the ability to present findings to diverse audiences.
  • Fluent in English (written and spoken).

Obowiązki

  • Extract and analyze network and business data to identify trends, detect anomalies, and recommend improvements in service performance and customer experience.
  • Apply advanced analytical techniques and develop predictive models and algorithms that support telecom operations across the value chain.
  • Develop, test, and deploy data models into production, supporting automation and performance monitoring.
  • Collaborate with cross-functional teams including engineering, product, and operations to define analytical goals and deliver impactful results.
  • Maintain and enhance the model development environment including pipelines and orchestration frameworks.
  • Visualize and explain the outcomes of the work in a way that is understandable for diverse audiences.
T-Mobile

T-Mobile

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