INTERNSHIP DETAILS

Uni Internship Jan to July 2027 - AI Benchmarking and Automatic Evaluation Framework Development

CompanySynapxe
LocationSingapore
Work ModeOn Site
PostedJuly 7, 2026
Internship Information
Core Responsibilities
The intern will develop and enhance evaluation frameworks and benchmarking pipelines for Large Language Models in healthcare applications. Responsibilities include conducting literature reviews, refining evaluation metrics, and analyzing model performance to ensure reliability and safety.
Internship Type
full time
Company Size
3659
Visa Sponsorship
No
Language
English
Working Hours
40 hours
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About The Company
Synapxe is the national HealthTech agency inspiring tomorrow’s health. The nexus of HealthTech, we connect people and systems to power a healthier Singapore. Together with partners, we create intelligent technological solutions to improve the health of millions of people every day, everywhere. Reimagine the future of health together with us at www.synapxe.sg
About the Role

Join Synapxe as an intern and see how you can contribute in powering a healthier Singapore. Internship@Synapxe is where curiosity meets impact! You would be able to gain practical experience, hone your skills, and be part of meaningful work that improves health through technology!

 

As an intern you will join the Data Science & AI team to advance the evaluation and benchmarking of Large Language Models (LLMs) for healthcare applications. As AI adoption continues to grow across healthcare, there is an increasing need for robust, standardized, and domain-specific evaluation frameworks to assess model performance, reliability, and safety. This internship focuses on enhancing healthcare AI benchmarking capabilities through the development of evaluation methodologies, benchmarking pipelines, and standardized assessment frameworks.

 

The selected intern(s) will assist in following:

 

  • Conduct literature reviews on AI benchmarking methodologies, evaluation metrics, and healthcare AI validation frameworks
  • Understand and extend existing benchmarking pipelines across healthcare use cases such as question answering, clinical summarization, and diagnosis tasks
  • Refine and experiment with evaluation metrics to improve the assessment of AI model performance
  • Improve evaluation prompt design and assess its impact on scoring reliability and consistency
  • Curate and prepare healthcare evaluation datasets to support benchmarking activities
  • Design and implement standardized benchmarking workflows to improve reproducibility and scalability
  • Perform experiments comparing different models, prompts, and evaluation approaches
  • Analyse benchmarking results to identify model strengths, limitations, and potential risks in healthcare contexts
  • Develop benchmarking dashboards, summary reports, or master benchmarking tables to present findings effectively
  • Document methodologies, evaluation strategies, and experiment results
  • Prepare presentation materials and support knowledge-sharing activities within the team

 

About You:

 

  • Undergraduate currently in Year 2 or Year 3, pursuing a degree in Business Analytics, Business Artificial Intelligence Systems, Information Systems, Computer Science, Computer Engineering, Data Science, or a related discipline
  • Strong proficiency in Python programming, with solid coding fundamentals
  • Basic understanding of statistics and natural language processing (NLP) concepts, including evaluation metricsFamiliarity with Large Language Models (LLMs) and prompt engineering is preferred
  • Independent, fast-learner, and self-driven 
  • Good team player with strong analytical and communication skills 
  • Ability to multitask and work effectively as part of a multidisciplinary team 

 

Note: The scope of the project may evolve based on organisational priorities. Interns may also be given opportunities to contribute to other ongoing projects and initiatives within the team as required.

 

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Key Skills
PythonNatural Language ProcessingLarge Language ModelsPrompt EngineeringStatisticsAI BenchmarkingData AnalysisClinical SummarizationHealthcare AI ValidationDataset Curation
Categories
Data & AnalyticsTechnologyHealthcareSoftwareScience & Research