AI Value Engineering Intern (Immediate)
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AI Value Engineering Intern (Immediate)
Location
Singapore
Experience
Entry
Posted
Jul 14, 2026
Apply by
August 13, 2026
Applicants
0
Early applicantEasy applyInternshipWork from Office
Job Description
AI Value Engineering Intern
Duration: Minimum 3 months (3–5 days/week; full-time preferred)
Start Date: As soon as possible
About Univers
Univers provides the world’s most comprehensive decarbonization system.
We help companies and countries optimize energy systems and reduce carbon emissions with accurate, reliable, and actionable decarbonization data. Our EnOS (Energy and Environment Operating System) platform connects on-the-ground operational technology and in-the-cloud intelligence to deliver real-time energy data and data-driven carbon monitoring, reporting, and abatement.
With 365 million sensors and smart devices connected, 845GW of renewable energy under management, and a community of over 500 customers, we’re helping the world’s leading businesses get the world to net zero—and what comes after it.
For more information, please visit https://univers.com/
About the Role
Are you interested in how AI can solve complex business challenges and create measurable real-world impact?
As an AI Value Engineering Intern, you will work with the AI Value Engineering team to partner clients on their AI transformation journeys. You will help understand their most important business priorities, identify the AI opportunities that can create the greatest value, and work with business, data, product, and engineering teams to turn those opportunities into real solutions.
This is a hands-on opportunity to experience the full journey of AI value creation—from analsying a client’s business model, P&L, processes, and KPIs, to shaping business cases, prioritising use cases, supporting solution delivery, and helping translate ideas into measurable outcomes. You will gain exposure to client and leadership discussions while working under the guidance of experienced team members.
Projects may span transport and logistics, manufacturing, healthcare, retail, energy, and other asset-intensive sectors, with use cases across AI-orchestrated energy transition, operational improvement, and commercial growth.
Key Responsibilities
Client Problem Solving & Value Identification
- Support client discovery through industry research, business analysis, meeting preparation, and participation in client discussions and workshops.
- Break down client business models, P&Ls, operating processes, and KPIs to identify value pools, pain points, and improvement opportunities.
- Build structured problem statements, value-driver trees, financial models, and quantitative business cases with guidance from the team.
- Analyse client and market data to size opportunities, test hypotheses, and support evidence-based recommendations.
AI Opportunity Prioritisation & Solution Shaping
- Translate business needs into clearly defined AI use cases, success metrics, and prioritised opportunity roadmaps.
- Work closely with AI data, AI systems, product, engineering, and domain teams to assess data availability, technical feasibility, delivery requirements, and expected business impact.
- Support development of client-ready proposals, executive presentations, workshop materials, and value-sharing models.
- Research emerging AI technologies, industry practices, competitors, and academic literature to inform solution design and recommendations.
Project Delivery & Cross-functional Coordination
- Support project planning and execution across pilots, proofs of value, and contracted AI transformation programmes.
- Coordinate actions, dependencies, decisions, and deliverables across client stakeholders and internal business, data, product, and engineering teams.
- Help define delivery milestones and success measures, track progress, and surface issues requiring resolution.
- Contribute to reusable AI Value Engineering methodologies, industry value-driver libraries, use-case databases, analytical models, and project templates.
- Use modern AI and analytics tools to improve the speed, depth, and quality of research, analysis, modelling, and content development.
Qualifications
- Currently pursuing a Bachelor’s, Master’s, or Ph.D. degree in Engineering, Computer Science, Data Science, Business Analytics, Economics, Operations Research, Finance, or another quantitatively rigorous discipline.
- Strong analytical and structured problem-solving ability, with the potential to break complex questions into clear analyses and actionable outputs.
- Comfortable working with quantitative information and learning to build financial models, analyse datasets, and connect business KPIs to value creation.
- Proficiency in modern AI tools for research, analysis, modelling, and content development is a strong advantage; strong working proficiency in Excel and PowerPoint is required, while exposure to SQL, Python, Power BI, Tableau, or similar analytics tools is a plus.
- Able to communicate clearly within a team, absorb coaching, and translate analysis into well-structured written materials and presentations.
- Curious, diligent, detail-oriented, and willing to go deep into unfamiliar business, technical, and industry topics.
- Relevant experience through consulting, strategy, analytics, product, technology, research, case competitions, hackathons, or previous internships is a plus, but not required.
- Strong written and spoken English. Fluency in written and spoken Mandarin is an advantage, but not required.
What You’ll Gain
- First-hand exposure to how enterprises identify, prioritise, and implement high-value AI opportunities.
- Experience analysing real business challenges and connecting strategy, data, technology, and financial impact.
- Opportunities to participate in client and leadership discussions and learn how executive-level decisions are shaped.
- Hands-on collaboration with AI data, AI systems, product, engineering, and domain experts across the full transformation lifecycle.
- Practical experience producing consulting-quality analyses, financial models, executive presentations, and project deliverables.
- A strong foundation for future careers in management consulting, AI strategy, value engineering, product management, business analytics, or technology transformation.
Key Responsibilities
- Support client discovery through industry research, business analysis, and workshop participation.
- Break down client business models, P&Ls, and processes to identify value pools and improvement opportunities.
- Build structured problem statements, value-driver trees, financial models, and quantitative business cases.
- Translate business needs into clearly defined AI use cases, success metrics, and prioritized opportunity roadmaps.
- Collaborate with AI data, systems, product, and engineering teams to assess technical feasibility and business impact.
- Support development of client-ready proposals, executive presentations, and value-sharing models.
- Research emerging AI technologies and industry practices to inform solution design.
- Support project planning and execution across pilots, proofs of value, and contracted AI transformation programmes.
- Coordinate actions and deliverables across client stakeholders and internal teams.
- Contribute to reusable AI Value Engineering methodologies and project templates.
Requirements
- Currently pursuing a Bachelor’s
- Master’s
- or Ph.D. degree in Engineering
- Computer Science
- Data Science
- Business Analytics
- Economics
- Operations Research
- Finance
- or another quantitatively rigorous discipline.
Skills Required
ExcelPowerPointFinancial ModelingData AnalysisBusiness AnalysisAnalytical thinkingStructured problem-solvingCommunicationAttention to detailCuriosityDiligenceSQLPythonPower BITableauMandarin
Benefits
- First-hand exposure to enterprise AI implementation
- Hands-on collaboration with cross-functional teams
- Opportunities to participate in client and leadership discussions
- Practical experience producing consulting-quality analyses and presentations
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