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Internship Neural Engineer Jobs in El Segundo, CA

Senior AI Engineer

Hawthorne, CA · On-site

$140 - $164/hr

... or internships beyond coursework. * Significant experience in classical algorithm development ... Experience working with physics‑informed deep learning models and PDE‑grounded neural networks.

Internship Neural Engineer information

See El Segundo, CA salary details

$11

$20

$31

How much do internship neural engineer jobs pay per hour?

As of Aug 24, 2026, the average hourly pay for internship neural engineer in El Segundo, CA is $20.57, according to ZipRecruiter salary data. Most workers in this role earn between $17.16 and $22.26 per hour, depending on experience, location, and employer.

What is an internship neural engineer?

An Internship Neural Engineer is a student or recent graduate working temporarily with a team to support the development and testing of neural engineering technologies. These interns typically assist with research, data analysis, software programming, and hardware integration related to brain-computer interfaces, neural prosthetics, or other neuroscience-related projects. The internship provides hands-on experience in a multidisciplinary field that combines neuroscience, engineering, and computer science, allowing interns to gain practical skills and contribute to ongoing research or product development.

What types of projects and responsibilities can I expect as an internship neural engineer?

As an Internship Neural Engineer, you can expect to work on a variety of projects involving the development, testing, and analysis of neural interfaces or brain-computer interface systems. Typical responsibilities include assisting with data collection and analysis, building and validating machine learning models, and supporting the design or prototyping of neural hardware or software tools. You will likely collaborate closely with senior engineers, neuroscientists, and software developers, gaining exposure to both experimental and computational aspects of the work. This hands-on experience is invaluable for building technical skills and understanding the interdisciplinary nature of neural engineering.

What are the key skills and qualifications needed to thrive as an internship neural engineer, and why are they important?

To thrive as an Internship Neural Engineer, you generally need a solid background in neuroscience, biomedical engineering, or a related field, with foundational knowledge of neural systems and signal processing. Familiarity with programming languages such as Python or MATLAB, experience with data analysis tools, and exposure to neural recording hardware or simulation software are typically required. Strong problem-solving skills, curiosity, and the ability to communicate complex ideas clearly help interns stand out in this interdisciplinary field. These skills are essential for effectively contributing to research, analyzing neural data, and collaborating on innovative solutions in neural engineering projects.

What cities near El Segundo, CA are hiring for Internship Neural Engineer jobs?

Cities near El Segundo, CA with the most Internship Neural Engineer job openings:

Machine Learning Engineer

Escalon Services, Inc.

Santa Monica, CA • On-site

$100 - $120/hr

Other

Medical, PTO

Posted 18 days ago


Job description

Machine Learning Engineer

Application Deadline: 30 September 2026

Department: Recruiting Done

Employment Type: Full Time

Location: Santa Monica

Compensation: $100,000 - $120,000 / year

Description About Our Client

Our client is a technology company developing next-generation intelligent systems at the intersection of AI, XR, robotics, autonomy, and spatial computing. Their products support mission-critical applications across defense, public safety, and critical infrastructure. They are seeking passionate professionals who thrive in fast-paced environments and enjoy building impactful products from concept to deployment.

The Role

Our client is seeking a Machine Learning Engineer to help design and implement intelligent systems that extract meaning and predictive value from computer vision and behavioral datasets. This is a junior-level, in-person role suited for candidates with 2–3 years of experience and a solid foundation in deep learning, embeddings, and modern neural architectures.

As a member of the AI team, the ideal candidate will work on projects that leverage CNNs, transformer models, and embedding architectures to encode and reason over pose, facial, and action-based visual data. These systems support downstream tasks such as future action prediction, semantic matching, and similarity-based inference.

Key Responsibilities
  • Design and implement machine learning pipelines that encode visual input (pose, face, object/classification) into shared embedding spaces for similarity and predictive tasks.
  • Build and fine-tune convolutional and transformer-based neural architectures optimized for visual recognition and representation learning.
  • Develop encoding and embedding techniques that allow consistent comparison across multiple data types (e.g., pose vectors, facial landmarks, class labels).
  • Apply techniques such as cosine similarity, distance metrics, and latent clustering to perform behavioural inference and action prediction.
  • Contribute to model training, evaluation, and deployment workflows, including data preprocessing, augmentation, hyperparameter tuning, and performance profiling.
  • Collaborate closely with engineers in computer vision, embedded systems, software, and UI/UX to ensure seamless integration of AI pipelines into real-time systems.
  • Produce clean, well-documented code and maintain version-controlled model artefacts and experiment logs.
  • Write technical documentation for models, training procedures, evaluation criteria, and system integration.
Skills, Knowledge and Expertise
  • Bachelor's or Master's degree in Artificial Intelligence, Data Science, Computer Science, Machine Learning, or a closely related discipline.
  • 2–3 years of experience in machine learning roles through internships, academic labs, or early career positions.
  • Strong understanding of Convolutional Neural Networks (CNNs) for image and video-based tasks.
  • Strong understanding of transformer architectures and their applications in vision or multimodal learning.
  • Strong understanding of embedding systems and vector space modeling for semantic and similarity-based tasks.
  • Strong understanding of encoding mechanisms and dimensionality reduction techniques for latent representation.
  • Proficiency in Python and deep learning frameworks such as PyTorch or TensorFlow.
  • Familiarity with pose estimation, facial recognition, or classification models (e.g., OpenPose, MediaPipe, FaceNet, ResNet variants).
  • Experience training models with structured and unstructured visual datasets.
  • Exposure to techniques like cosine similarity, triplet loss, contrastive learning, or temporal prediction modeling.
  • Strong computer science fundamentals, including data structures, algorithms, and software design patterns.
  • Comfort working in Linux-based development environments and version control systems (Git).
  • A collaborative mindset, with excellent communication skills and a willingness to learn across domains.
Bonus (Nice to have)
  • Experience integrating vision-based AI models into embedded or robotics systems.
  • Familiarity with ONNX or TensorRT for model optimization and deployment.
  • Background in sequence modeling, recurrent architectures, or video-based action recognition.
  • Exposure to multimodal AI systems that blend image, pose, and metadata representations.
  • Familiarity with techniques like CLIP, DINO, or self-supervised representation learning.
  • Experience with MLOps or training orchestration tools such as MLflow, Weights & Biases, or DVC.
Other Requirements
  • Must be a US Citizen or a valid Green Card holder. Visa sponsorship is not available for this role at this time.
  • Candidates must reside within a commutable distance of Santa Monica, California.
Benefits
  • Compensation: $100,000 to $120,000 per year
  • Comprehensive health coverage and flexible PTO
  • Opportunity to work on innovative AI, robotics, XR, and autonomous technologies
  • Collaborative multidisciplinary engineering environment
  • Career growth and professional development opportunities
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