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Machine Learning Engineer
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Machine Learning Eng....
Jumio Corporation
drjobs Machine Learning Engineer العربية

Machine Learning Engineer

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1 Vacancy
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Jobs by Experience

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3 - 4 years

Job Location

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Amman - Jordan

Monthly Salary

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Not Disclosed

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Salary Not Disclosed

Nationality

Jordanian

Gender

N/A

Vacancy

1 Vacancy

Job Description

Req ID : 2423758
  • About the job

    We are looking for a graph machine learning engineer. In this role, you will get to work alongside various experts in product and engineering.

    Example Responsibilities:
  • Devise and construct cutting-edge graph-based machine learning models and algorithms aimed at detecting and mitigating fraudulent activities within intricate, interlinked datasets.
  • Implement and enhance graph-based algorithms dedicated to node classification, link prediction, and community detection, specifically tailored to identify patterns indicative of fraudulent behavior.
  • Work collaboratively with cross-functional teams to integrate machine learning models into scalable and efficient production systems.
  • Conduct thorough analyses and experiments to evaluate model performance, scalability, and efficiency on graph-based data structures.
  • Research and remain abreast of the latest advancements in graph-based machine learning techniques, contributing groundbreaking concepts to augment our fraud detection technological capabilities.

  • Skills and Experience:
  • Bachelor's or Master's degree in Computer Science, Data Science, Machine Learning, or related field.
  • Demonstrated proficiency (3 years) in crafting and deploying machine learning models tailored explicitly for detecting fraud within graph-based data structures.
  • Strong proficiency in graph theory, graph algorithms, and graph databases (e.g., Neo4j, Amazon Neptune, TigerGraph).
  • Proficient in programming languages commonly used in machine learning (e.g., Python, R, Java) and libraries/frameworks (e.g., NetworkX, PyTorch Geometric, GraphSAGE).
  • Hands-on experience in data preprocessing, feature engineering, and model assessment within the domain of graph-based machine learning specifically oriented towards detecting fraudulent activities.

  • Great to have Experience and Qualifications:
  • Solid understanding of graph embedding techniques, graph neural networks, and their applications in solving real-world problems.
  • PhD in Computer Science or a related field with a focus on graph-based machine learning.
  • Familiarity with distributed computing frameworks (e.g., Apache Spark) for scalable graph processing.
  • Experience working with large-scale graph datasets and optimizing performance for computational efficiency.
  • Contributions to open-source projects related to graph-based machine

Employment Type

Full Time

Company Industry

Accounting & Auditing

About Company

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