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Data Scientist

Experis

 

Cherry Hill Township, NJ, USA

Posted On: 30+ days ago
Experience: 5+ years
Availability: Hybrid
Openings: 1
Category: Data Scientist
Tenure: No Preference/Any
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Description

What You’ll Do

  • Design and optimize alerting thresholds and anomaly detection logic for large-scale monitoring systems (e.g., volume, pass rate, fail rate signals).
  • Analyze alert data to identify false positives, missed detections, and signal gaps, and implement improvements to enhance alert quality.
  • Develop and apply machine learning models (anomaly detection, clustering, pattern recognition) to detect abnormal behavior across datasets.
  • Enable GenAI-powered and agent-based workflows to automate alert analysis, enrichment, and triage recommendations.
  • Translate analyst workflows into automated, scalable solutions, reducing repetitive manual investigation effort.
  • Build and maintain data pipelines and analytical workflows in Databricks and enterprise data platforms to support near real-time alerting.
  • Define and track alert performance metrics (precision, noise reduction, escalation quality) to continuously improve signal effectiveness.
  • Ensure all models, thresholds, and outputs are explainable, traceable, and audit-ready, aligned with regulatory and governance requirements.

 

What You Bring
Required Skills & Experience

  • Strong experience in data science, analytics, or machine learning
  • Proficiency in Python and SQL for data analysis and model development
  • Hands-on experience with Databricks and large-scale data platforms (e.g., Rahona or equivalent)
  • Solid understanding of:
    • Anomaly detection techniques
    • Threshold calibration and signal optimization
    • Model behavior and performance evaluation
  • Experience working with alerting systems, monitoring data, or operational metrics
  • Ability to translate complex data into clear, actionable insights

 

Technical Requirements
Must Have:

  • Python, SQL
  • Databricks (or similar data platform)
  • Machine Learning (anomaly detection, classification, clustering)
  • Understanding of AI / GenAI concepts and agent-based architectures



Dashboards:

  • Experience with Power BI or similar visualization tools


Nice to Have:

  • Exposure to Splunk, Datadog, TMX, BioCatch, or similar alerting platforms
  • Experience in fraud, cybersecurity, or operational risk analytics
  • Experience working in regulated or audit-driven environments
  • Experience with GenAI or agentic AI workflows (e.g., automation, recommendation systems)
  • Exposure to risk, compliance, or regulatory monitoring frameworks

Education

Any Graduate

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