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TeckHealth Linkedin · Posted 4mo ago

Applied AI Data Scientist - Consultant

New Caledonia

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Indexed description

Applied AI Data Scientist Contractor

Location:Charlotte, NC (On-site, 5 days/week)

Role Type:Contractor / Consultant

Duration:12 Months

TeckLeap is seeking an Applied AI Data Scientist who thrives at the intersection of analytics, engineering, and real-world problem solving. This role is ideal for someone who enjoys working hands-on with complex data, building production-grade AI capabilities, and contributing to high-impact applied intelligence initiatives.

Key Responsibilities

  • Perform statistical analysis, clustering, and probability modeling to uncover insights and inform AI-driven solutions.
  • Analyze graph-structured data to detect anomalies, extract probabilistic patterns, and support graph-based intelligence use cases.
  • Build NLP pipelines focused on NER, entity resolution, ontology extraction, and scoring methodologies.
  • Contribute to AI/ML engineering efforts by developing, testing, and deploying data-driven models and services.
  • Apply ML Ops fundamentals, including experiment tracking, metric monitoring, and reproducibility best practices.
  • Collaborate with cross-functional teams to translate analytical findings into scalable, production-ready capabilities.
  • Prototype rapidly, iterate efficiently, and help evolve data science best practices across the team.

Basic Qualifications (Required)

  • Degree in Computer Science, AI/ML, or a related technical field.
  • 5+ years of AI/ML-focused software engineering experience.
  • Strong experience in statistical modeling, clustering techniques, and probability-based analysis.
  • Hands-on expertise in graph data analysis, including anomaly detection and distribution pattern extraction.
  • Proficiency in Python and common data science/AI libraries (e.g., NumPy, Pandas, scikit-learn, PyTorch, spaCy, NetworkX).

Preferred Qualifications

  • Solid NLP skills with practical experience in NER, entity/ontology extraction, and evaluation methods.
  • An engineering-forward mindset with the ability to build, deploy, and optimize real-world solutions, not just theoretical models.
  • Working knowledge of ML Ops fundamentals, including experiment tracking and key model performance metrics.
  • Strong communication skills and the ability to collaborate effectively in fast-paced, applied AI environments.
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