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Wells Fargo

Principal ML Engineer

Wells Fargo

. Design and implement scalable ML pipelines for entity deduplication across knowledge graphs, handling entities extracted from diverse sources (transcripts, documents, structured data).

Posted 4/22/2026full-timeIrving • California, New Jersey, North Carolina, Texas • 🇺🇸 United StatesLead💰 $159,000 - $305,000 per yearWebsite

Tech Stack

Tools & technologies
CloudPython

About the role

Key responsibilities & impact
  • Design and implement scalable ML pipelines for entity deduplication across knowledge graphs, handling entities extracted from diverse sources (transcripts, documents, structured data).
  • Build clustering algorithms to identify similar patterns across processes, participants, and execution paths.
  • Develop ML models to extract canonical patterns of process execution from clickstream data and documentation.
  • Create ML-powered pipelines that continuously enrich knowledge graphs with discovered patterns, relationships, and insights.
  • Build models to calculate and analyze conformity scores comparing actual process execution against documented procedures.
  • Design ML solutions that operate at enterprise scale, handling large volumes of process data and documentation.
  • Work with Analysis & Evaluation team on pattern discovery from clickstream data and with Process Improvement team on process similarity analysis.

Requirements

What you’ll need
  • 7+ years of Engineering experience, or equivalent demonstrated through one or a combination of the following: work experience, training, military experience, education.
  • 3+ years of experience with clustering algorithms and unsupervised learning techniques for pattern discovery.
  • 2+ years of experience working with knowledge graphs or graph-based ML techniques.
  • 5+ years of experience with Python with experience in ML frameworks.
  • Experience with agentic data retrieval and analysis at the Enterprise Level.
  • 3+ years of experience building entity resolution, deduplication, or record linkage systems at scale.
  • Expertise in NLP techniques for semantic similarity, text clustering, and information extraction.
  • Experience with graph databases.
  • Background in process mining, conformance checking, or business process analysis.
  • Experience with LLMs and embedding models for semantic similarity.
  • Experience building ML pipelines using MLOps best practices.
  • Experience with cloud computing platforms.
  • Experience with distributed computing frameworks.
  • Knowledge of containerization and orchestration technologies.
  • Experience in financial services or operations domains.
  • Excellent communication skills across technical and non-technical audiences.
  • Advanced degree (M.S. or Ph.D.) in Computer Science, Machine Learning, or related field.

Benefits

Comp & perks
  • Health benefits
  • 401(k) Plan
  • Paid time off
  • Disability benefits
  • Life insurance, critical illness insurance, and accident insurance
  • Parental leave
  • Critical caregiving leave
  • Discounts and savings
  • Commuter benefits
  • Tuition reimbursement
  • Scholarships for dependent children
  • Adoption reimbursement

ATS Keywords

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Applicant Tracking System Keywords

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Hard Skills & Tools
machine learningclustering algorithmsunsupervised learningknowledge graphsPythonNLP techniquesentity resolutionML pipelinesMLOpsembedding models
Soft Skills
communication skills
Certifications
M.S.Ph.D.