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Salary
$130k – $150k per year
Location
Hybrid (New York, United States)
Seniority
Senior · 5+ years exp

Confirmed on the employer's own hiring board on Sep 26, 2026. First seen by Alion on Sep 25, 2026.

Overview
Company
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Profile match
Headquartered in Beijing, China, with North American operations based in Kirkland, Washington, iSoftStone is a global IT services and digital technology consulting enterprise. The company provides custom application development, cloud intelligence and migration, AI and machine learning data services, software testing, business process automation (RPA), digital marketing, and digital accessibility consulting. Operating dozens of global delivery centers across Asia, North America, and Europe, it serves Fortune 500 corporations and enterprise clients across the technology, financial services, telecommunications, retail, and manufacturing sectors worldwide.

Description

iSoftStone, Inc. is seeking a Senior Data Scientist to Join our Team!

*This is aHybrid Role in the New York City Metro Area*

**Client Site Travel Required- Up to 25%**

***Candidates must have permanent authorization to work in the United States. Visa sponsorship is not available for this role.***

This role is a client-facing data scientist supporting enterprise retail accounts across merchandising, supply chain, customer, and pricing analytics. You'll work embedded with client teams - scoping the problem, building the model, and defending the methodology to business stakeholders who are not data people. This is a consulting role: billable, multi-account, and dependent on your ability to translate ambiguous business questions into tractable modeling problems.

Responsibilities:

  • Own end-to-end delivery on retail analytics engagements: discovery, data assessment, feature design, modeling, validation, deployment handoff, and results readout.
  • Build and productionize models across the retail value chain - demand forecasting and inventory optimization, customer segmentation and CLV, price/promo elasticity and markdown optimization, assortment and allocation.
  • Design data models and semantic layers on client data platforms (Snowflake, Databricks, Fabric, BigQuery); work with data engineering to define the tables the models actually needrather than accepting what exists.
  • Interrogate data quality and business logic before modeling - retail data is messy, and identifying the flaw in a returns table or a channel attribution rule is often worth more than a better algorithm.
  • Present findings to director- and VP-level client stakeholders; quantify business impact in margin, sell-through, GMROI, or working capital terms, not model metrics.
  • Support pre-sales: solution shaping, estimation, POC design, and technical credibility in client pitches.
  • Mentor junior analysts and contribute reusable accelerators to the retail practice.

Qualifications:

  • Five+ years applied data science experience, with meaningful time on retail, CPG, or e-commerce problems.
  • Strong data modeling fundamentals - dimensional modeling, star/snowflake schemas, slowly changing dimensions, grain definition. You should be able to look at a retail transaction feed and design the model, not just query it.
  • Advanced SQL and production-grade Python (pandas, scikit-learn, statsmodels); comfort with at least one of PyTorch/TensorFlow, Prophet/ARIMA-family forecasting, or causal inference frameworks.
  • Demonstrated experience with time series forecasting and/or econometric modeling (elasticity, uplift, incrementality).
  • Cloud data platform experience (Snowflake, Databricks, Azure/AWS/GCP) and familiarity with CI/CD and version control practice.
  • Ability to work directly with clients: run a working session, handle pushback on methodology, and write a deck that a merchant will actually read.
  • Bachelor's degree in a quantitativediscipline.

PreferredQualifications:

  • Mathematics, Statistics, or Operations Research major - we specifically value candidates with formal mathematical training and the ability to reason from first principles about optimization, probability, and model assumptions.
  • Advanced degree (MS/PhD) in a quantitative field.
  • Retail domain knowledge: open-to-buy, allocation, replenishment, size/pack optimization, omnichannel inventory, RFM and loyalty analytics.
  • LLM/GenAI application experience in a retail context (demand sensing, agentic workflows, unstructured product or review data).
  • Consulting or professional services background.
  • Experience with retail systems data a plus- SAP, Salesforce Commerce Cloud, O9.

Pay rate:$130,000 to $150,000/year

iSoftStoneis a global IT service and consulting companythat creates value and drives success through technology solutions, service excellence, and digital innovation. We specialize in web and application development, software testing and support, data and content management, digital experience, accessibility, and data for machine learning and AI. With 20 delivery centers and more than 90,000 employees worldwide, iSoftStoneis proud to serve some of the world’s most well-known businesses, including 90+ Fortune Global 500 companies.

Visit us at https://www.isoftstoneinc.com.

iSoftStoneis committed to the practice of equal opportunity for all its employees and applicants in employment, and does not discriminate on the basis of race or ethnicity, color, age, national origin, religion, creed, marital status, sex, pregnancy, gender, gender identity, sexual orientation, status as an honorably discharged veteran or disabled veteran or military status, political affiliation or belief, citizenship/status as a lawfully admitted immigrant authorized to work in the United States, or presence of any physical, sensory, or mental disability. In addition, reasonable accommodation will be made for known physical or mental limitations for all otherwise qualified personswith disabilities.

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