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Computer Vision Engineer (The Visual Intelligence Architect)

Are you passionate about teaching machines to see, interpret, and understand the visual world? Do you thrive on applying computer vision techniques to solve complex real-world problems, from object detection to image segmentation and facial recognition? If you’re excited about pushing the boundaries of what’s possible with visual intelligence, then our client has an amazing opportunity for you. We’re looking for a Computer Vision Engineer (aka The Visual Intelligence Architect) to design, develop, and deploy computer vision solutions that will transform industries and elevate product experiences.

As a Computer Vision Engineer at our client, you’ll work with large datasets, develop cutting-edge computer vision algorithms, and implement solutions that have a direct impact on applications in fields like autonomous vehicles, healthcare, retail, and security. You’ll work alongside a talented team of engineers and data scientists to bring visual intelligence to life in innovative products.

Key Responsibilities:

  1. Develop and Optimize Computer Vision Algorithms:
    • Design and implement computer vision algorithms using state-of-the-art techniques such as convolutional neural networks (CNNs), image segmentation, object detection, and facial recognition. You’ll develop models using frameworks like TensorFlow, PyTorch, or OpenCV.
  2. Image and Video Processing:
    • Preprocess and analyze image and video data to develop models that can accurately detect and classify objects, track motion, and recognize patterns. You’ll apply techniques like edge detection, feature extraction, and background subtraction to create robust systems.
  3. Train and Fine-Tune Vision Models:
    • Train deep learning models for tasks like object detection, image classification, and video analysis. You’ll experiment with different model architectures, optimize hyperparameters, and fine-tune models for real-world deployment.
  4. Deploy and Scale Vision Solutions:
    • Work with cross-functional teams to deploy computer vision models into production environments. You’ll ensure that models are scalable, efficient, and integrated with real-time systems, whether deployed in the cloud or on edge devices.
  5. Model Evaluation and Performance Monitoring:
    • Evaluate model performance using metrics such as accuracy, precision, recall, and F1-score. You’ll monitor models in production, retraining and optimizing them as necessary to maintain high levels of accuracy and performance.
  6. Collaborate with Cross-Functional Teams:
    • Partner with data scientists, software engineers, and product managers to understand business requirements and develop solutions that align with product goals. You’ll ensure that your computer vision models deliver real-world value and solve business-critical problems.
  7. Stay Updated on Industry Trends:
    • Keep up with the latest research and advancements in computer vision and deep learning. You’ll experiment with cutting-edge techniques such as generative adversarial networks (GANs), transformers, and self-supervised learning, integrating them into the company's solutions when applicable.

Required Skills:

  • Computer Vision Expertise: Strong knowledge of computer vision techniques, including object detection, image segmentation, optical flow, 3D reconstruction, and facial recognition. You’re experienced with state-of-the-art deep learning models like CNNs, ResNet, YOLO, and EfficientNet.
  • Programming and Tools: Proficiency in Python and experience with computer vision frameworks and libraries like OpenCV, TensorFlow, PyTorch, or Keras. You can implement custom vision algorithms and optimize them for performance and accuracy.
  • Data Processing and Feature Engineering: Expertise in processing and augmenting large datasets for computer vision tasks. You understand image preprocessing techniques like scaling, normalization, and data augmentation to improve model performance.
  • Deployment Experience: Experience deploying computer vision models in production environments using cloud platforms (AWS, GCP, Azure) or on edge devices. Familiarity with tools like Docker, Kubernetes, and TensorFlow Serving is a plus.
  • Research and Innovation: Interest in exploring and applying new research in computer vision and deep learning. You can identify opportunities to improve existing models and experiment with new architectures and techniques.

Educational Requirements:

  • Bachelor’s or Master’s degree in Computer Science, AI, Machine Learning, Data Science, or a related field. Equivalent experience in computer vision engineering is also highly valued.
  • Certifications or additional coursework in computer vision, deep learning, or AI are a plus.

Experience Requirements:

  • 3+ years of experience in computer vision engineering, with a proven track record of developing and deploying computer vision models in real-world applications.
  • Experience working with large-scale image and video datasets and implementing deep learning models to solve complex visual challenges.
  • Hands-on experience with cloud-based services for deploying and scaling computer vision models is highly desirable.
  • Health and Wellness: Comprehensive medical, dental, and vision insurance plans with low co-pays and premiums.
  • Paid Time Off: Competitive vacation, sick leave, and 20 paid holidays per year.
  • Work-Life Balance: Flexible work schedules and telecommuting options.
  • Professional Development: Opportunities for training, certification reimbursement, and career advancement programs.
  • Wellness Programs: Access to wellness programs, including gym memberships, health screenings, and mental health resources.
  • Life and Disability Insurance: Life insurance and short-term/long-term disability coverage.
  • Employee Assistance Program (EAP): Confidential counseling and support services for personal and professional challenges.
  • Tuition Reimbursement: Financial assistance for continuing education and professional development.
  • Community Engagement: Opportunities to participate in community service and volunteer activities.
  • Recognition Programs: Employee recognition programs to celebrate achievements and milestones.

Average salary estimate

$100000 / YEARLY (est.)
min
max
$80000K
$120000K

If an employer mentions a salary or salary range on their job, we display it as an "Employer Estimate". If a job has no salary data, Rise displays an estimate if available.

What You Should Know About Computer Vision Engineer (The Visual Intelligence Architect), Unreal Gigs

Are you ready to take your skills as a Computer Vision Engineer to the next level? At The Visual Intelligence Architect, we’re seeking someone who is not just experienced but truly passionate about teaching machines to interpret and understand our complex visual world. As a key player on our team, your role will involve designing, developing, and deploying innovative computer vision solutions that have the potential to transform entire industries, from autonomous vehicles to healthcare and beyond. You’ll have the chance to work with large datasets and exciting technologies, creating applications that leverage top-tier computer vision techniques like convolutional neural networks and image segmentation. Collaborating with a talented group of engineers and data scientists, you’ll turn advanced concepts into validated models that live in production. Your input will drive the optimization and efficiency of these models, ensuring they're scalable and integrate smoothly into real-time systems. With a focus on continuous learning, you’re encouraged to stay current with the latest advancements in the field, exploring new approaches that can enhance our offerings. Plus, we offer a supportive work environment, flexible schedules, and great perks, making this an outstanding opportunity for you to grow your career while impacting the world of visual intelligence.

Frequently Asked Questions (FAQs) for Computer Vision Engineer (The Visual Intelligence Architect) Role at Unreal Gigs
What are the responsibilities of a Computer Vision Engineer at The Visual Intelligence Architect?

As a Computer Vision Engineer at The Visual Intelligence Architect, your main responsibilities will include developing and optimizing computer vision algorithms, preprocessing and analyzing image and video data, training and fine-tuning vision models, and deploying solutions into production environments. You’ll collaborate with cross-functional teams to ensure your models meet business objectives and contribute to innovative product solutions.

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What qualifications are required to become a Computer Vision Engineer at The Visual Intelligence Architect?

To qualify as a Computer Vision Engineer at The Visual Intelligence Architect, you need a Bachelor’s or Master’s degree in fields like Computer Science, AI, or Data Science. A minimum of 3 years of experience in computer vision engineering, solid programming skills in Python, and familiarity with frameworks such as TensorFlow and OpenCV are essential. Additionally, experience deploying models on cloud platforms will be an advantage.

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What tools and technologies do Computer Vision Engineers use at The Visual Intelligence Architect?

At The Visual Intelligence Architect, Computer Vision Engineers primarily work with programming languages like Python and tools such as OpenCV, TensorFlow, and PyTorch. Proficiency in deploying applications on cloud platforms (AWS, GCP, or Azure) and utilizing containerization tools like Docker is also essential for seamless implementation of computer vision solutions.

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What benefits can I expect as a Computer Vision Engineer at The Visual Intelligence Architect?

Working as a Computer Vision Engineer at The Visual Intelligence Architect comes with a host of benefits including comprehensive medical and dental insurance, generous paid time off, professional development opportunities, and access to wellness programs. We also provide flexible work schedules, tuition reimbursement, and community engagement initiatives.

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How important is staying updated with trends for a Computer Vision Engineer at The Visual Intelligence Architect?

Staying updated with industry trends is crucial for a Computer Vision Engineer at The Visual Intelligence Architect. The field of computer vision is rapidly evolving, and incorporating the latest research and techniques such as generative adversarial networks and self-supervised learning can significantly enhance model development, ensuring that our solutions remain cutting-edge.

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Common Interview Questions for Computer Vision Engineer (The Visual Intelligence Architect)
What computer vision techniques are you most proficient in?

When answering this question, highlight specific computer vision techniques you have used, such as object detection or image segmentation. Be sure to mention frameworks or languages you've utilized, like TensorFlow or OpenCV, to provide context for your experience.

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Can you discuss a challenging computer vision project you worked on?

Outlining a previous project demonstrates your problem-solving skills. Describe the challenge you faced, the solution you implemented, and the outcome. This approach not only showcases your technical abilities but also your capacity to overcome obstacles.

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How do you ensure the accuracy of your computer vision models?

Talk about the specific metrics you use to evaluate model performance, such as precision, recall, and F1-score. Mention techniques like cross-validation and performance monitoring in production, showcasing your commitment to maintaining high accuracy.

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What is your experience with deploying models in production environments?

Share your experience with deployment processes utilizing specific tools and platforms, such as AWS, GCP, or Docker. Discuss any challenges you’ve faced during deployment and how you resolved them, demonstrating your practical knowledge.

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How do you approach feature engineering for computer vision tasks?

Discuss methods you employ for feature extraction and data augmentation. Emphasizing your understanding of preprocessing techniques and how they can improve model performance will highlight your thoroughness in delivering high-quality results.

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What deep learning models have you implemented?

List the deep learning architectures you have worked with, such as CNNs or YOLO. Talk about specific use cases, the challenges faced, and the results of your implementation to showcase your depth of knowledge.

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How do you stay informed about advancements in computer vision?

Share strategies you use to keep up with industry trends, such as following relevant journals, attending conferences, or participating in online courses. This indicates your commitment to growth and your proactive approach to learning.

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Can you explain your process for training a computer vision model?

Outline your systematic approach for model training, including data preparation, configuration of hyperparameters, the choice of loss function, and how you evaluate model performance during training. Highlight your data-driven decision-making process.

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What are the key challenges in computer vision today?

Discuss the ongoing challenges in the computer vision field, such as overfitting, data quality, and ethical considerations. articulating your awareness of these challenges reflects your deep understanding of the field's complexities.

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Why are you interested in the Computer Vision Engineer role at The Visual Intelligence Architect?

Convey your enthusiasm for the position, tying it to your passion for computer vision and the specific work done by The Visual Intelligence Architect. Mention any aspects of their projects that resonate with you, showcasing your alignment with their vision.

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DATE POSTED
December 25, 2024

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