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ML Solution Consultant

Job in New York, New York County, New York, 10261, USA
Listing for: Uncountable
Full Time position
Listed on 2026-06-17
Job specializations:
  • IT/Tech
    Machine Learning/ ML Engineer, AI Engineer (Applied/Software), Data Scientist, Data Science Manager
  • Research/Development
    Data Scientist
Salary/Wage Range or Industry Benchmark: 100000 - 125000 USD Yearly USD 100000.00 125000.00 YEAR
Job Description & How to Apply Below
Location: New York

Science moves slowly — not because researchers aren't brilliant, but because their tools haven't kept up. Uncountable is changing that. We build a unified R&D platform used by the world's leading chemists, material scientists, and biologists to dramatically accelerate how new products are discovered, developed, and brought to market.

Founded by engineers from MIT and Stanford, and trusted by enterprise R&D organizations across chemicals, pharmaceuticals, advanced materials, and food & beverage, Uncountable is on a mission to accelerate industrial R&D by an order of magnitude. We're a high-impact team that moves fast and gives people real ownership from day one.

The Role

Machine learning is only as powerful as the people who can apply it in context — and in industrial R&D, that context is everything. As an ML Solution Consultant at Uncountable, you'll be the person who bridges deep technical expertise in data science and statistical modeling with a genuine understanding of how R&D scientists think, experiment, and make decisions.

You'll work directly with leading R&D organizations to deploy Uncountable's AI capabilities, guiding customers through the full arc of adoption: from understanding their scientific challenges and data structures, to designing optimal experimentation strategies, to ensuring they're extracting real, measurable value from our platform's ML tools.

This is not a back-office data science role. You'll be customer-facing, highly autonomous, and operating at the frontier of applied ML in science — advising PhD-level researchers and R&D directors on how to use AI to accelerate their most important work. You'll also have a direct line to product and engineering, shaping how our platform evolves based on what you see in the field.

If you want to do meaningful applied ML work that reaches the real world — and have the communication skills to bring scientists along with you — this role is for you.

What You'll Do

Deploy AI Capabilities with Customers

  • Partner directly with R&D teams at enterprise customers to understand their scientific challenges, data environments, and experimentation workflows

  • Guide customers through onboarding onto Uncountable's ML tools, ensuring data is well-structured and models are configured to reflect their specific scientific context

  • Help customers interpret model outputs, act on recommendations, and build confidence in AI-driven experimentation over time

Serve as a Technical and Scientific Expert

  • Act as a subject‑matter expert in statistical modeling, machine learning, and experimental design — advising customers on strategies that maximize the value of their data

  • Translate complex ML concepts into clear, actionable guidance for scientists and R&D leaders who may not have a data science background

  • Troubleshoot modeling challenges, identify data quality issues, and design solutions that make the science work

Drive Cross-Functional Impact

  • Collaborate closely with Uncountable's product and engineering teams, bringing structured customer feedback and real‑world usage patterns to inform platform development

  • Identify recurring challenges and opportunities across customer engagements that can be addressed through new features or improved workflows

  • Contribute to internal knowledge-sharing on ML best practices, customer patterns, and domain‑specific modeling approaches

Requirements
  • ML and data science depth: Strong foundation in machine learning, statistical modeling, or applied statistics — comfortable with experimental design, model evaluation, and working with messy, real‑world scientific data

  • Scientific domain fluency: Experience working with R&D data, physical experimentation workflows, or scientific datasets — enough to speak credibly with researchers about their work

  • Communication: Exceptional ability to translate technical concepts into business and scientific value for a wide range of audiences, from bench scientists to R&D directors

  • Software fluency: Comfort working with data science tools and environments (Python, statistical software, or similar); experience with scientific or R&D software a strong plus

  • Autonomy: Ability to manage customer engagements independently,…

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