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Engineer I, Artificial Intelligence
Entegris · Singapore
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Job description
Job Title:
Engineer I, Artificial IntelligenceJob Description:
The Role:
The mission of this role is to design, develop, deploy, and operationalize agentic AI systems and scientific machine learning solutions that automate complex, multi-step technical workflows.
The AI Engineer will focus on building LLM-driven, goal-oriented AI agents and data-driven models for physical systems, integrating them with data, tools, sensors, and simulation workflows.
This is a hands-on, implementation-focused role suited for someone passionate about agentic AI, scientific ML, and real-world engineering problem solving. Exposure to Modeling & Simulation (CFD/FEA) is beneficial but not mandatory.
In this role you will:
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Design and develop agentic AI systems for multi-step reasoning, tool usage, and workflow orchestration
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Build LLM-driven workflows and Python-based pipelines integrating agents with data, APIs, and engineering tools
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Develop and apply scientific machine learning models using experimental, sensor, and simulation data
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Create data pipelines for preprocessing, feature extraction, and integration of time-series and spatial data
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Deploy and operationalize AI/ML models and agents as scalable services or APIs
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Implement monitoring, evaluation, and validation for both agent systems and ML models
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Visualize data and model outputs to support analysis and decision-making
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Collaborate with domain experts to integrate AI into engineering and simulation workflows, and document reusable solutions Traits we believe make a strong candidate:
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Bachelor’s degree (minimum) inMechanical Engineering, Computer Science, or a related engineering discipline
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1–3 years of relevant work experience inAI, ML, software engineering, or applied research roles (industry, startup, or research labs)
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Strong proficiency in Python programming
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Hands‑on experience building agentic AI systems****that includesmulti‑step task execution, Tool/function calling and workflow orchestration across agents or components
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Practical experience with machine learning libraries, including NumPy, Pandas, SciPy, scikit‑learn, TensorFlow and/or PyTorch
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Ability to independently design, build, and debug end‑to‑end AI workflows
Candidates with a demonstrable showcase project will be strongly preferred. Examples include (but are not limited to):
- An agentic AI system that automates a complex multi‑step task (engineering, data analysis, design, or simulation related)
- A GitHub, internal demo, or portfolio project demonstrating, agent orchestration, use of tools/APIs, non‑trivial decision logic or reasoning loops
- Integration of LLM agents with data processing, visualization, or external software tools
The project does not need to be simulation‑focused, but relevance to engineering workflows is a plus
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Experience with CFD or FEA workflows, particularly involving geometry, meshing, or simulation post‑processing will be considered as an advantage
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Familiarity with open‑source engineering tools such as OpenFOAM, SU2, CalculiX or similar will be considered as an advantage Your success will be measured by:
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Effectiveness of agentic AI and SciML systems in real workflows
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Quality, scalability, and maintainability of deployed AI systems
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Demonstrated impact in reducing manual effort and improving engineering workflows
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Ability to translate ambiguous physical systems problems into structured AI/ML solutions
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Strong collaboration across AI, simulation, and experimental teams
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