Senior AI Deep Learning Engineer - REMOTE
PerficientAbout the role
We currently have an exciting career opportunity for a Senior AI Deep Learning Engineer. While our headquarters location is St. Louis, MO, this position is remote and can be based anywhere within the United States and will be working ET zones.
Perficient is always looking for the best and brightest talent and we need you! We’re a quickly-growing, global digital consulting leader, and we’re transforming the world’s largest enterprises and biggest brands. You’ll work with the latest technologies, expand your skills, and become a part of our global community of talented, diverse, and knowledgeable colleagues.
Machine Learning Development
- Maintains, as well as furthers, enhances existing machine learning modules for automotive applications including autonomous vehicles.
- Designs and implements new machine learning based approaches based on existing frameworks.
- Keeps up to speed with the state of the art of academic research and AI/ML technology in the Automotive industry.
- Applies industry and technology expertise to real business problems.
- Coordinates with automotive engineers and autonomous driving software experts.
- Transfers technologies and solutions to automotive OEM development divisions.
Data Engineering and Pipelines:
- Understand business context and wrangles large, complex datasets.
- Create repeatable, reusable code for data preprocessing, feature engineering, and model training.
- Build robust ML pipelines using Google Vertex AI, BigQuery and other GCP services.
Responsible AI and Fairness:
- Consider ethical implications and fairness throughout the ML model development process.
- Collaborate with other roles (such as data engineers, product managers, and business analysts) to ensure long-term success.
Infrastructure and MLOps:
- Work with infrastructure as code to manage cloud resources.
- Implement CI/CD pipelines for model deployment and monitoring.
- Monitor and improve ML solutions.
- Implement MLOps using Vertex AI pipelines on the GCP platform.
Process Documentation and Representation
- Develops technical specifications and documentation.
- Represents the Customer in the technical community, such as at conferences.
- 7 - 10 years of professional experience REQUIRED
- 5+ years’ Deep Learning experience REQUIRED
- Master’s Degree in Computer Science or equivalent.
- PhD Strongly Preferred.
Required Skills
- Strong communication skills must be able to describe and explain complex AI/ML concepts and models to business leaders.
- Desire and ability to work effectively within a group or team.
- Strong knowledge of different machine learning algorithms.
- Deep Learning: Proficiency in deep learning techniques and frameworks
- Machine Learning: Strong understanding of traditional machine learning algorithms and their applications.
- Computer Vision: Expertise in computer vision, including object detection, image segmentation, and image recognition
- Proficiency in NLP techniques, including sentiment analysis, text generation, and language understanding models. Experience with multimodal language modeling and applications.
- Neural Network Architectures: Deep understanding of various neural network architectures such as CNNs, RNNs, and Transformers.
- Reinforcement Learning: Familiarity with reinforcement learning algorithms and their applications in AI.\
- Data Preprocessing: Skills in data cleaning, feature engineering, and data augmentation.
- Model Training And Tuning: Experience in training, fine-tuning, and optimizing AI models.
- Model Deployment: Knowledge of model deployment techniques, including containerization (Docker) and orchestration (Kubernetes).
- Understanding of Generative AI concepts and LLM Models tailored to a wide variety of automotive applications.
- Strong documentation skills for model architecture, code, and processes.
Desired Skills
- AI Ethics: Awareness of ethical considerations in AI, including bias mitigation and fairness.
- Legal And Regulatory Knowledge: Understanding of AI-related legal and regulatory considerations, including data privacy and intellectual property.
- Data Management: Proficiency in data storage and management systems, including databases and data lakes.
- Cloud Computing: Familiarity with Google Cloud Platform.
- Experience with GCP, Vertex AI and BigQuery is a plus.
The salary range for this position takes
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