Senior AI Systems Engineer – Material Intelligence

NETZSCH Grinding & Dispersing

Santa Catarina

Híbrido

BRL 120 000 - 180 000

Tempo integral

Há 5 dias
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Vantagens oferecidas por esta oferta de emprego

CLT or PJ contract
Hybrid work in Florianópolis/Curitiba

Resumo da oferta

NETZSCH Grinding & Dispersing is seeking an AI/Data Scientist to build internal AI capabilities for material intelligence systems within the NEDGEX unit. You will work with structured material datasets to develop robust, interpretable models and to document pipelines, validation strategies, and assumptions.

Collaboration with partners and internal teams will be essential to translate AI concepts into material insights.

Qualificações

  • Advanced English language proficiency.
  • Strong programming skills across modern languages and frameworks.
  • Experience applying ML to real-world, structured datasets.

Responsabilidades

  • Work with structured material datasets and prepare them for AI/ML applications.
  • Analyze and improve data pipelines, feature engineering approaches, and data representations.
  • Support development of predictive models for material properties and related use cases.
  • Evaluate model performance with focus on robustness, generalization, and uncertainty.
  • Develop internal standards for model validation, interpretability, and reproducibility.
  • Document system architectures, modeling decisions, assumptions, and limitations clearly.
  • Collaborate with external partners and internal stakeholders to understand AI systems deeply.
  • Translate AI concepts into material-science insights.
  • Contribute to scalable AI-enabled material data architectures.
  • Build AI-based tools and lightweight agent systems to improve workflows.
  • Use LLMs pragmatically for automation, data processing, and developer support.
  • Contribute to AI infrastructure and tooling design decisions.

Conhecimentos

Advanced English
Programming
Machine learning
Feature engineering
Model validation
Data pipelines
LLMs/APIs
Automation basics
Scientific data exposure

Descrição da oferta de emprego

Company Description

NEDGEX is an innovation unit focused on building and scaling new digital and AI-driven ventures. We work on high-impact, forward-looking initiatives across industries, combining strong engineering with applied AI.

Job Description

In this role, you will primarily contribute to MaterialIQ, one of our key innovation projects. MaterialIQ focuses on developing AI systems based on material datasets to unlock deeper insights into material properties and behavior.

Your primary mission is to build internal AI and data science capability for material intelligence systems. You will work with structured, complex, and often limited material datasets and help develop robust, interpretable, and production-relevant models.

At the same time, you will ensure that knowledge about data pipelines, feature engineering, model assumptions, and validation strategies is understood, documented, and internalized.

Qualifications
Responsibilities
  • Work with structured material datasets and prepare them for AI and machine learning applications.
  • Analyze and improve data pipelines, feature engineering approaches, and data representations.
  • Support the development of predictive models for material properties and related use cases.
  • Evaluate model performance with a strong focus on robustness, generalization, and uncertainty.
  • Develop internal standards for model validation, interpretability, and reproducibility.
  • Document system architectures, modeling decisions, assumptions, and limitations in a structured way.
  • Collaborate closely with external partners and internal stakeholders to deeply understand AI systems.
  • Translate AI and data science concepts into material-science-relevant insights.
  • Contribute to building a scalable architecture for AI-enabled material data systems.
  • Build and integrate AI-based tools and lightweight agent systems to improve workflows.
  • Use LLMs pragmatically for automation, data processing, and developer support.
  • Contribute to AI infrastructure and tooling design decisions.
  • Ensure systems are reliable, maintainable, and usable in practice.
Your Profile
  • Advanced English;
  • Strong programming skills;
  • Experience with machine learning in real-world settings, especially with structured or industrial datasets;
  • Solid understanding of:
    • Feature engineering
    • Model validation
    • Handling small or complex datasets
  • Ability to reason about model assumptions, limitations, and robustness;
  • Experience with data pipelines and data preparation;
  • Familiarity with modern AI tooling (LLMs, APIs, basic automation) - deep specialization in agent systems is not required;
  • Exposure to scientific, engineering, or physics-related data is a strong plus.
Additional Information
  • CLT or PJ contract
  • Preferably hybrid work in Florianópolis or Curitiba.
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