Quick Overview
Seniority
Mid Senior
Work mode
Hybrid
Location
Johnston, RI, United States
Posted
22 hours ago
Machine LearningNumPyScikit-learnGenerative AILLMPandasPython
Job Description
We are seeking an experienced Data Scientist to support the development and evaluation of AI-powered fraud self-service voice agents and conversational AI systems. The primary responsibility is not model deployment or engineering implementation, but designing evaluation frameworks, measuring system performance, identifying failure patterns, conducting root-cause analysis, and optimizing model behavior through data-driven experimentation.
Key Responsibilities
- Design and execute evaluation frameworks for LLM, RAG, and multi-turn conversational AI systems.
- Develop metrics to assess customer intent recognition, conversation quality, guardrail effectiveness, and business outcomes.
- Analyze voice-agent interactions and identify areas of failure, drift, and performance degradation.
- Perform prompt tuning and experimentation to improve model accuracy and reliability.
- Conduct root-cause analysis of conversational failures and recommend remediation strategies.
- Measure performance across different model configurations, prompts, and guardrail implementations.
- Partner with AI Engineering and Product teams to validate solutions before production deployment.
- Build dashboards and reports that communicate model effectiveness and operational impact.
- Support fraud-related customer service use cases, including intent detection and multi-turn conversation flows.
Success Criteria
- Develop reliable evaluation methodologies for conversational AI systems.
- Quantify the effectiveness of fraud self-service voice agents.
- Optimize prompts, retrieval strategies, and guardrails using empirical evidence.
- Deliver actionable insights that improve customer experience and model performance.
- Establish measurable KPIs for intent detection and multi-turn conversation success.
Mandatory Skills:
- Strong background in Data Science, Machine Learning, Generative AI, or a related quantitative field.
- Hands-on experience evaluating LLM, RAG, Agentic AI, or Conversational AI solutions.
- Deep understanding of model evaluation techniques and metrics, including:
- Precision@K
- Recall@K
- Mean Reciprocal Rank (MRR)
- F1 Score
- Retrieval and generation quality assessment
- Experience performing experimentation, statistical analysis, and performance benchmarking.
- Strong Python programming skills.
- Experience with machine learning libraries and frameworks such as Scikit-learn, XGBoost, Pandas, NumPy, and related tools.
- Ability to communicate technical findings succinctly to highly technical stakeholders.
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