Senior Data Science Consultant - Enterprise Complaints, Remediations & Loudspeaker
Job in
Saint Paul, Ramsey County, Minnesota, 55126, USA
Listed on 2026-06-14
Listing for:
Wells Fargo
Full Time
position Listed on 2026-06-14
Job specializations:
-
IT/Tech
AI Engineer (Applied/Software), Machine Learning/ ML Engineer, Data Scientist
Job Description & How to Apply Below
Are you looking for more? Find it here. At Wells Fargo, we're more than a financial services leader - we're a global trailblazer committed to driving innovation, empowering communities, and helping our customers succeed. We believe that a meaningful career is much more than just a job - it's about finding all of the elements to help you thrive, in one place.
Living the Well Life means you're supported in life, not just work. It means having robust benefits, competitive compensation, and programs designed to help you find work-life balance and well-being. You'll be rewarded for investing in your community, celebrated for being your authentic self, and empowered to grow. Join us!
About this role
Wells Fargo Enterprise Complaints, Remediations and Loudspeaker Analytics (ERA) is seeking a Senior Data Science Consultant focused on advanced analytics and AI solutions supporting voice‑of‑customer insights, risk identification, and operational decisioning. This role is strongly oriented toward applied Generative AI, with a primary focus on designing, experimenting with, and evaluating LLM‑enabled systems that operate on large volumes of unstructured customer interaction data.
The consultant will own the end‑to‑end experimentation lifecycle for GenAI use cases - including prompt and agent design, iterative testing, error analysis, tuning, and evaluation - while leveraging traditional machine learning and NLP techniques where appropriate to support or augment GenAI solutions. The role emphasizes practical execution, rapid prototyping, and disciplined evaluation to ensure outputs are reliable, explainable, and suitable for use in risk‑aware, human‑in‑the‑loop decision environments.
In this role, you will
* Lead hands‑on Generative AI experimentation, including prompt engineering, prompt library development, and agent‑style workflows that support voice‑of‑customer understanding, issue identification, and decision support.
* Design and execute systematic testing of LLM outputs across large collections of historical customer interaction data, evaluating behavior across tasks, data conditions, and edge cases.
* Conduct deep error analysis of GenAI outputs, identifying hallucinations, weak or missing evidence, false positives, false negatives, and ambiguity, and translate findings into targeted prompt and system improvements.
* Develop and apply GenAI evaluation frameworks, including rule‑based heuristics, statistical indicators, and LLM‑as‑a‑Judge techniques, to assess output quality, consistency, and risk. Build and refine confidence and uncertainty scoring mechanisms for LLM decisions to support prioritization and secondary human review in higher‑risk scenarios.
* Apply machine learning and NLP models where appropriate to complement GenAI solutions, such as feature extraction, classification, clustering, or signal generation.
* Analyze complex structured and unstructured datasets to generate hypotheses, surface emerging risks, and identify opportunities where GenAI can augment or automate decision workflows.
* Collaborate closely with product teams, engineers, and business stakeholders to align GenAI experimentation with operational workflows, risk tolerance, and real‑world constraints.
* Produce clear documentation of prompts, experiments, evaluation methods, and findings to ensure transparency, repeatability, and knowledge sharing.
Communicate GenAI behaviors, trade‑offs, limitations, and risks effectively to non‑technical stakeholders, helping set appropriate expectations for usage.
* May mentor teammates by sharing best practices related to GenAI experimentation, evaluation, and responsible deployment.
Required Qualifications
* 4+ years of data science experience, or equivalent demonstrated through one or a combination of the following: work experience, training, military experience, education
* Master's degree or higher in a quantitative discipline such as mathematics, statistics, engineering, physics, economics, or computer science
Desired Qualifications
* Strong hands‑on experience with Python‑based experimentation and analytics workflows, working with large structured and unstructured text…
Position Requirements
10+ Years
work experience
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