Synced from SAP SuccessFactors · Sep 16

Undergraduate AI & Computer Vision Assistant

Purdue UniversityW LAFAYETTE, IN, USPosted Sep 16, 2026
Computer Vision EngineerIntern
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Other open Purdue University roles
Sep 16
Posted
SAP SuccessFactors
Applicant system
Job descriptionReq 1430605100

Job Summary

Position Overview Seeking an undergraduate student to support development and testing of AI and image-processing methods for engineering prototypes. The student will work with images, data, probability-based models, and machine-learning tools to help detect, classify, and evaluate physical system states.

What You Will Do

● Develop and test image-processing and computer-vision methods using Python.
● Work with camera images to identify objects, connections, patterns, and incorrect configurations.
● Prepare datasets, label images, extract features, and evaluate model performance.
● Experiment with classical computer vision and machine-learning approaches.
● Analyze uncertainty and probability in detection and classification results.
● Document experiments, results, and technical decisions.

Who Should Apply


Purdue juniors or seniors in Computer Science, Electrical/Computer Engineering, Data Science, Mathematics, Statistics, Mechanical Engineering, or a related field. You do not need to know every topic listed above. Strong mathematical reasoning, curiosity, and willingness to learn matter most.

 

Education

0

Experience

Useful Background


● Python programming and comfort working with data.
● Image processing or computer vision, such as OpenCV, filtering, segmentation, feature extraction, or object detection.
● Probability and statistics, including random variables, distributions, conditional probability, Bayes' rule, expectation, variance, and Markov's inequality.
● Linear algebra, including vectors, matrices, transformations, and eigenvalues/eigenvectors.
● Calculus and basic optimization concepts.
● Interest in stochastic processes and Markov chains, including the Markov property, state transitions, and transition probabilities.
● Machine-learning fundamentals such as classification, training/testing data, loss functions, and model evaluation.
● Interest and eagerness to learn and work with a diverse team, including virtual work with collaborators in different industry sectors and time zones, building a hands-on kit for a variety of communities of learners.


Helpful, But Not Required
● PyTorch, TensorFlow, scikit-learn, NumPy, or pandas.
● Convolutional neural networks, object detection, or image classification.
● Experience with cameras, embedded systems, robotics, or engineering prototypes.
● Coursework in AI, machine learning, computer vision, probability, statistics, signals, or applied mathematics.

FLSA Status

Non-Exempt
View original posting on SAP SuccessFactors

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Based on publicly available information, candidates applying through SuccessFactors typically begin by creating a candidate profile and submitting a résumé along with role-specific application questions. Given the wide range of position types at Purdue University, from skilled trades and campus operations to academic, administrative, and clinical roles, applicants can generally expect the process to include an online application, possible knockout or screening questions, and automated acknowledgment of submission. Review timelines and response times vary depending on department needs and hiring volume. Candidates may be contacted for phone or virtual screening, followed by one or more interview stages that could involve hiring managers, department staff, or panel discussions, particularly for specialized or higher-level roles. Reference checks and background verification are common steps prior to a final offer, though specifics can vary by position and department.“

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Undergraduate AI & Computer Vision Assistant
Purdue University · W LAFAYETTE, IN, US
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