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Senior Supply Chain Solutions Analyst-AI

VKore Solutions LLCSunnyvale, CA🇺🇸United StatesPosted 4 Aug 2026

Quick Overview

Work Type
Hybrid
Level
Mid Senior

Job Description

  • Validate and cleanse internal BOM (Bill of Materials) and MPN (Manufacturer Part Number) data across systems
  • Cross-reference supplier data against external sources (Z2Data, DigiKey, SiliconExpert) to identify gaps, risks, and inconsistencies
  • Build automated data quality checks and exception workflows
  • Deliver ad-hoc analyses, e.g., "which components in this program have lifecycle risk?" or "where are we single-sourced on long-lead parts?"

Internal Tools & Applications

  • Build and iterate on custom internal tools for supply chain risk monitoring (Python, web-based dashboards, APIs)
  • Integrate external market intelligence platforms into internal workflows
  • Develop AI-assisted features - risk scoring, lifecycle classification, early warning signals
  • Create self-service analytics and visualizations for non-technical sourcing leads

Solution Design

  • Translate supply chain business problems into technical solutions
  • Prototype fast - get a working tool in front of users within days, not months
  • Work with existing data infrastructure (pipelines, tables, etc) rather than building from scratch
  • Identify opportunities to automate manual processes with AI/LLM tools

Required Skills

  • 5+ years in a technical analyst, solutions engineer, or applied data science role
  • Strong Python - scripting, data manipulation (pandas), API integrations, light web development
  • Proficient in SQL — can query large datasets, write complex joins, work with partitioned tables
  • Experience connecting to and working with external APIs and data sources
  • Ability to build working internal tools quickly - web apps, dashboards, notebooks, scripts
  • Comfortable working with messy, real-world data - reconciling across sources, handling edge cases
  • Strong communication — can present findings to non-technical stakeholders clearly

Nice to Have

  • Supply chain, procurement, or hardware operations background
  • Familiarity with electronic component data (BOMs, AVLs, MPNs, lifecycle stages)
  • Experience with component databases (DigiKey, Octopart, Z2Data, SiliconExpert)
  • Comfort with AI/ML tools - LLMs, classification models, or using AI assistants to accelerate work
  • Web frameworks (Flask, Streamlit, React) for rapid prototyping
  • Meta internal tools (Bento, Presto/Hive, Unidash, Dataswarm) or equivalent at scale

Skills

Flask
SQL
Hive
LLM
Pandas
Procurement
Python
React
Sourcing

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