Computer Vision Engineering Intern (Summer 2026)

Remote
Internship
Student (College)
 

Computer Vision Engineering Intern (Summer 2026) Vectech | Baltimore, MD

Schedule: Full-time (32 hrs/week minimum), June 1 - August 25, 2026. Exact hours are flexible, coordinating with the technical team.

Location: Primarily remote, with occasional in-person work at our Baltimore office (3600 Clipper Mill Rd, STE 401).

Compensation: $25/hour + $500 home office stipend at the start of the internship to support your remote setup.


About the project

Vectech builds AI-powered tools that identify mosquitoes and ticks from images, helping public health organizations make faster, smarter decisions about vector control. Our computer vision models are deployed in the real world, which means they encounter things they weren't trained on: new geographic regions, local species variants, unfamiliar phenotypes. And when that happens, model performance drifts.

This internship is about understanding that drift. You'll work with our computer vision team to develop analysis methods that track how geographic and genetic diversity affect model performance in the field, and to identify early warning signs that a model needs retraining. This is real MLOps work on a deployed production system, not a toy dataset.


What will you do?

  • Collaborate with the product management team to develop and maintain dashboards that track product usage and performance
  • Analyze data from computer vision systems deployed in the field to generate insights and identify trends
  • Create clean, intuitive visualizations to support internal reporting and external communications
  • Assist in preparing figures and data summaries for presentations, publications, or stakeholder meetings
  • Help ensure data quality and consistency across different sources and platforms
  • Respond to data requests with curiosity, efficiency, and just enough skepticism to keep us all honest
  • Participate in team meetings, contribute to project planning, and ask great questions
  • Make SQL queries, prepare datasets, and train computer vision models on various research problems
  • Support development of improved modules in Vectech's computer vision suite


Required experience/skills

  • Proficiency in Python, and familiarity with either TensorFlow or PyTorch
  • Some hands-on experience in computer vision, image processing, or machine learning:  research, grad school, coursework, or personal projects all count
  • Exposure to Linux systems
  • Cumulative GPA of 2.5 or above
  • Readiness to learn fast and adapt
  • Genuine curiosity about public health and environmental science

Preferred experience/skills

  • Experience with MLOps concepts (model monitoring, dataset drift, retraining pipelines)
  • Familiarity with SQL and data visualization tools
  • Experience contributing to shared codebases (Git)
  • Prior experience analyzing real-world deployed model performance


Candidate Eligibility

This position is funded through the Maryland Lighthouse Industries and AI Internship Program. To be eligible, candidates must meet one of the following:

  • Current graduate student (Master's or PhD) enrolled at a Maryland institution of higher education
  • Current undergraduate senior enrolled at a Maryland institution of higher education
  • Maryland resident who is a current undergraduate senior or graduate student at an out-of-state institution
  • Recent graduate (within 2 years of completing an Associate's, Bachelor's, Master's, or PhD) who is a Maryland resident


Who is Vectech?

Vectech equips professionals with the capabilities of a medical entomologist using AI. Mosquitoes are the deadliest animals on Earth, killing over half a million people each year. Ticks transmit deadly and debilitating diseases. With Vectech's products, public health and vector control organizations can quickly generate the information they need to make better decisions, faster. As a public benefit corporation, we care deeply about the people we work with and the mission we're working toward. We hope you will too.



 
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