Big Data Engineer - AI/ML and Fraud Strategy

Interon IT Solutions

  • NULL, NC
  • 6 days ago

    Highlights

    This role will help define the technology strategy, data architecture, and AI/ML capabilities needed to support new fraud risks and payment-related use cases. We are looking for a Senior Big Data Engineer to support the future growth of the client's fraud prevention platform.

    Numbers & Facts

    LocationNULL, NC

    Description

    Senior Big Data Engineer AI/ML and Fraud Strategy

    Location

    • Hybrid: 3 days onsite
    • Approved locations: Pennsylvania, North Carolina, Texas, or Arizona
    • Contract-to-hire
    • U.S. citizens and Green Card holders only

    Position Summary

    We are looking for a Senior Big Data Engineer to support the future growth of the client's fraud prevention platform.

    The client is expanding into new financial products, including a debit card offering. This role will help define the technology strategy, data architecture, and AI/ML capabilities needed to support new fraud risks and payment-related use cases.

    Responsibilities

    • Define the technology roadmap for the fraud prevention platform.
    • Design scalable big data and cloud solutions.
    • Build data pipelines for transaction, customer, payment, and behavioral data.
    • Support real-time and batch fraud detection.
    • Apply AI and machine learning for fraud detection, risk scoring, and anomaly detection.
    • Work with fraud, risk, product, engineering, and business teams.
    • Support the launch of the new debit card product.
    • Evaluate payment-processing and financial-partner integrations.
    • Develop AWS-based data and analytics solutions.
    • Recommend architecture and technology best practices.
    • Create technical designs, roadmaps, and solution documentation.
    • Provide technical leadership and guidance to engineering teams.

    Required Skills

    • Strong big data engineering or data architecture experience.
    • Strong experience in banking, payments, fintech, or financial services.
    • Experience with Python, SQL, PySpark, or similar technologies.
    • Experience with AI and machine learning solutions.
    • Strong AWS cloud experience.
    • Experience with Spark, Databricks, Kafka, Hadoop, or similar platforms.
    • Experience with real-time or streaming data processing.
    • Knowledge of data lakes, data warehouses, and lakehouse architecture.
    • Experience with APIs, microservices, and event-driven systems.
    • Strong understanding of data quality, governance, security, and lineage.
    • Strong communication and technical leadership skills.

    Preferred Skills

    • Fraud prevention or transaction-monitoring experience.
    • Debit card, credit card, ACH, digital wallet, or payment-processing experience.
    • Experience with AWS services such as S3, Glue, Lambda, Kinesis, SageMaker, Redshift, EMR, or Step Functions.
    • Experience with MLOps, model monitoring, feature engineering, or model governance.
    • Experience working with payment processors, banks, card networks, or fintech partners.

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