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As part of our Google Cloud Platform practice, you will lead technology innovation for our clients through robust delivery of world-class solutions. There will never be a typical day and that's why people love it here. The opportunities to make a difference within exciting client initiatives are unlimited in the ever-changing technology landscape. You will be part of a growing network of technology experts who are highly collaborative taking on today's biggest, most complex business challenges. We will nurture your talent in an inclusive culture that values diversity. Come grow your career in technology at Accenture!
Generative AI Developer is responsible for designing, implementing, and managing cutting-edge Generative AI solutions on the Google Cloud Platform (GCP).
This individual will be a technical leader, collaborating with various teams to understand client needs and translate them into robust Generative AI solutions. The ideal candidate possesses a deep understanding of Generative AI models, MLOps principles, and GCP's AI/ML services. We are looking for candidates who have a broad set of technology skills and who can demonstrate an ability to design the right solutions with appropriate combinations of GCP and 3rd party technologies for deploying on the GCP cloud.
Key responsibilities may include:
Develop and implement GenAI solutions, collaborating with cross-functional teams, and supporting the successful execution of AI projects for a diverse range of clients.
Experience developing and maintaining ML systems built with open source tools.
Conduct model tuning and optimization to improve model accuracy, efficiency, and robustness.
Fluency in Python.
Demonstrate deep knowledge of ML frameworks such as TensorFlow, PyTorch, Keras, Spacy, and scikit-learn.
Develop and optimize search models, pipelines, and workflows for efficient data retrieval and relevance ranking.
Utilize Google Vertex AI AutoML capabilities to build custom search models for specific use cases.
Integrate VertexAI search functionalities into existing applications and systems, ensuring seamless user experiences.
Collaborate with data engineers, software developers, and business stakeholders to understand search requirements and deliver solutions accordingly.
Implement best practices for data indexing, query optimization, and performance tuning within the Google Vertex AI framework.
Performance Optimization: Monitor, analyze, and optimize data platform performance to ensure optimal efficiency and cost-effectiveness.
Technology Evaluation: Stay updated on the latest GCP data technologies, evaluating and recommending their adoption within the organization.
Collaboration: Work collaboratively with data engineers, data scientists, business analysts, and other stakeholders to understand requirements and deliver optimal solutions.
Documentation: Develop clear and comprehensive documentation, including architectural diagrams, design specifications, and operational guidelines.
Travel may be required for this role. The amount of travel will vary from 25% to 100% depending on business need and client requirements.
Basic Qualifications:
Minimum 3 years of experience designing and deploying with one or more from the following ML frameworks: TensorFlow, PyTorch, JAX, Spark ML, etc.
Minimum 3 years of experience training and fine-tuning models in large-scale environments (e.g., image, language, recommendation) with accelerators.
Minimum 2 years experience with distributed training and optimizing performance versus costs.
Minimum 2 years of experience with CI/CD solutions in the context of MLOps and LLMOps including automation with IaC (e.g., using terraform).
Minimum 2 years experience in systems design with the ability to design and explain data pipelines, ML pipelines, and ML training and serving approaches.
Minimum 3 years of experience working with RAG technologies and LLM frameworks, LLM model registries (VertexAI Model Garden, Hugging Face), LLM APIs, embedding models, and vector databases
Bachelor's degree or equivalent (minimum 12 years) work experience. (If Associate's Degree, must have a minimum 6 years work experience)
Preferred Qualifications:
Experience participating in projects that focused on one or more of the following areas: Predictive Analytics, Data Design, Generative AI, Machine Learning, ML Ops
Generative AI Studio: Experience with Generative AI Studio for prototyping and experimenting with generative AI models.
Model Garden: Familiarity with Google's Model Garden and its offerings for accessing and deploying pre-trained GenAI models.
MLOps for GenAI: Experience in implementing MLOps practices for the development, deployment, and monitoring of GenAI models.
Cloud Architecture: Proven track record in designing and implementing cloud-based data architectures.
Problem-Solving: Excellent analytical and problem-solving skills.
Communication: Strong communication and interpersonal skills, capable of collaborating effectively with various teams.
Certifications: GCP Machine Learning Engineer or equivalent certifications are highly desirable.
Compensation at Accenture varies depending on a wide array of factors, which may include but are not limited to the specific office location, role, skill set, and level of experience. As required by local law, Accenture provides a reasonable range of compensation for roles that may be hired in California, Colorado, District of Columbia, Illinois, Maryland, Minnesota, New York or Washington as set forth below.We accept applications on an on-going basis and there is no fixed deadline to apply.
Information on benefits is here. (https://www.accenture.com/us-en/careers/local/total-rewards)
Role Location Annual Salary Range
California $63,800 to $196,000
Colorado $63,800 to $169,300
District of Columbia $68,000 to $180,300
Illinois $59,100 to $169,300
Minnesota $63,800 to $169,300
Maryland $59,100 to $156,800
New York $59,100 to $196,000
Washington $68,000 to $180,300
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