GenAI Tech Lead - SVP

3800 CITIGROUP CENTER DRIVE BUILDING G TAMPA

Citi

Citi is a leading global bank for institutions with cross-border needs, a global provider in wealth management and a U.S. personal bank.

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About Citi:

Citi, the leading global bank, has approximately 200 million customer accounts and does business in more than 160 countries and jurisdictions. Citi provides consumers, corporations, governments, and institutions with a broad range of financial products and services, including consumer banking and credit, corporate and investment banking, securities brokerage, transaction services, and wealth management.

As a bank with a brain and a soul, Citi creates economic value that is systemically responsible and in our clients’ best interests. As a financial institution that touches every region of the world and every sector that shapes your daily life, our Operations & Technology teams are charged with a mission that rivals any large tech company. Our technology solutions are the foundations of everything we do from keeping the bank safe, managing global resources, and providing the technical tools our workers need to be successful to designing our digital architecture and ensuring our platforms provide a first-class customer experience. We reimagine client and partner experiences to deliver excellence through secure, reliable, and efficient services

Citi’s Functions Technology is responsible for delivering Technology solutions to Citi's Functions organizations.  Functions Technology mission is to optimize Citi's Technology environment by delivering world class applications, driving standardization of the production environment, reducing complexity, optimizing management of systems supporting global functions such as Compliance, Controls, Internal Audit and Risk, and introducing innovative technologies that provide new business capabilities, reduce the technology total cost of ownership, and create a competitive advantage for Citi.

Job Overview:

We are seeking a dynamic and innovative Gen AI Lead to spearhead the development and integration of Generative AI capabilities across our enterprise-wide Controls Technology platform. As the Gen AI Lead, you will be responsible for building, implementing, and optimizing AI-driven solutions to enhance operational efficiencies, automate decision-making, and drive strategic insights. This role requires both hands-on expertise in AI/ML and leadership skills to build and lead a high-performing AI team.

Key Responsibilities:

  • Lead Generative AI Strategy: Define and implement a comprehensive AI strategy aligned with enterprise-wide goals, focusing on innovation in the Controls Technology domain.

  • Build & Lead a High-Performing Team: Hire, mentor, and manage a team of AI specialists, ensuring the acquisition and retention of top talent in the AI/ML space.

  • Drive AI Innovation: Collaborate with internal stakeholders to identify business challenges that can be solved through AI, creating scalable solutions using Generative AI technologies.

  • AI System Development: Oversee the design, development, and deployment of AI models and algorithms, ensuring solutions are robust, efficient, and scalable.

  • Cross-functional Collaboration: Work closely with the Data Mesh, Cloud Architecture, and broader tech teams to integrate AI models into existing and future architectures.

  • Stay Current on AI Trends: Continuously monitor the latest AI trends and technologies to ensure the organization remains at the cutting edge of Gen AI innovations.

  • Ensure Ethical AI Use: Ensure all AI initiatives comply with data privacy, ethical AI standards, and corporate governance policies.

Required Technical Skills:

  • Large Language Models (LLMs) & Fine-Tuning: Deep knowledge of LLMs and advanced fine-tuning techniques and proficient in Parameter-Efficient Fine-Tuning (PEFT) methods, including LoRA, QLoRA, Adapter Tuning, and Prefix Tuning. Experience with full fine-tuning, instruction tuning strategies, and cutting-edge agentic AI techniques such as Reinforcement Learning from Human Feedback (RLHF) and multi-task learning is essential.

  • Model Optimization: Expertise in model compression and quantization methods and be skilled in techniques like AWQ and GPTQ, particularly GPTQ-for-LLaMA. Proficiency in using optimized inference engines such as vLLM, DeepSpeed, and FP6-LLM is crucial for maximizing model performance and efficiency.

  • Prompt Engineering: Adept at prompt engineering, demonstrating proficiency in various techniques and best practices. Familiarity with tools and frameworks that facilitate effective prompt design is necessary to guide the team in creating powerful and efficient AI interactions.

  • Retrieval-Augmented Generation (RAG): Advanced knowledge of RAG techniques is required, including expertise in hybrid search methods, multi-vector retrieval, Hypothetical Document Embeddings (HyDE), self-querying, query expansion, re-ranking, and relevance filtering. This knowledge will be crucial in developing sophisticated AI systems that can leverage external knowledge effectively.

  • Machine Learning Frameworks and Cloud Computing: Proficiency in TensorFlow, PyTorch, and high-level APIs like Keras is essential. Knowledge of distributed training and parallel processing frameworks is also required to handle large-scale AI projects efficiently.

  • Natural Language Processing (NLP) and AI Deployment: Advanced NLP skills, including Named Entity Recognition (NER), Dependency Parsing, Text Classification, and Topic Modeling. Experience with Transfer Learning, Few-shot, and Zero-shot learning paradigms is crucial. Expertise in containerization (Docker), orchestration (Kubernetes), and experience with CI/CD pipelines for AL/ML model deployment.

  • Data Science, Engineering, and API Development: Strong proficiency in data preprocessing, feature engineering, and handling large-scale datasets is required. Experience with real-time AI applications and streaming data processing is valuable. Expertise in designing and implementing RESTful APIs for seamless AI model integration.

  • Generative AI Tools & Platforms: Experienced with cutting-edge generative AI tools, including LangChain for building LLM applications, LlamaIndex for context-augmented generative AI, and Hugging Face Transformers. Familiarity with Gen AI APIs like OpenAI, Gemini, Claude etc. and other relevant generative AI platforms is essential. Proficiency with version control systems like Git for collaborative AI development is also required.

  • AI Compliance & Guardrails: Knowledge of AI compliance frameworks and best practices. Experience in implementing guardrails to ensure ethical AI usage and mitigate risks is crucial. Familiarity with frameworks such as Microsoft's AI Guidance Framework will be beneficial in maintaining responsible AI development and deployment practices.

Required Leadership & Soft Skills:

  • Team Leadership: Proven ability to build, lead, and develop high-performing AI teams, ensuring alignment with organizational goals.

  • Strategic Thinking: Ability to define a long-term vision for Gen AI, articulate the value proposition, and map it to organizational objectives.

  • Collaboration & Influence: Strong interpersonal skills to work effectively across technical and non-technical teams, influencing decision-making at all levels.

  • Innovation Focused: Passion for staying at the forefront of AI technologies, encouraging innovation, and exploring new AI applications.

  • Communication Skills: Ability to convey complex AI concepts to non-technical stakeholders, demonstrating the value and potential business impact of AI initiatives.

  • Problem Solving: Proactive and analytical mindset to address challenges and identify opportunities for AI-driven optimization.

Qualifications:

  • 8+ years of experience in AI/ML, with at least 3 years in Generative AI.

  • 5+ years of leadership experience managing AI teams and delivering complex AI solutions.

  • Extensive hands-on experience with AWS services and infrastructure related to AI/ML.

  • Strong portfolio of AI-driven projects showcasing successful implementations of Generative AI solutions in a business context.

Education :

Bachelor’s or Master’s degree in Computer Science, Data Science, AI, or a related field .

Additional information may be found at www.citigroup.com| Twitter: @Citi | YouTube: www.youtube.com/citi| Blog: http://blog.citigroup.com| Facebook: www.facebook.com/citi| LinkedIn: www.linkedin.com/company/citi.

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Job Family Group:

Technology

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Job Family:

Digital Software Engineering

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Time Type:

Full time

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Primary Location:

Tampa Florida United States

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Primary Location Full Time Salary Range:

$153,600.00 - $230,400.00


In addition to salary, Citi’s offerings may also include, for eligible employees, discretionary and formulaic incentive and retention awards. Citi offers competitive employee benefits, including: medical, dental & vision coverage; 401(k); life, accident, and disability insurance; and wellness programs. Citi also offers paid time off packages, including planned time off (vacation), unplanned time off (sick leave), and paid holidays. For additional information regarding Citi employee benefits, please visit citibenefits.com. Available offerings may vary by jurisdiction, job level, and date of hire.

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Anticipated Posting Close Date:

Oct 15, 2024

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Citi is an equal opportunity and affirmative action employer.

Qualified applicants will receive consideration without regard to their race, color, religion, sex, sexual orientation, gender identity, national origin, disability, or status as a protected veteran.

Citigroup Inc. and its subsidiaries ("Citi”) invite all qualified interested applicants to apply for career opportunities. If you are a person with a disability and need a reasonable accommodation to use our search tools and/or apply for a career opportunity review Accessibility at Citi.

View the "EEO is the Law" poster. View the EEO is the Law Supplement.

View the EEO Policy Statement.

View the Pay Transparency Posting

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Tags: AI strategy API Development APIs Architecture AWS Banking CI/CD Classification Claude Computer Science CX Docker Engineering Feature engineering Gemini Generative AI Git Keras Kubernetes LangChain LLaMA LLMs LoRA Machine Learning Model deployment NLP OpenAI Pipelines Privacy Prompt engineering PyTorch RAG Reinforcement Learning Responsible AI RLHF Streaming TensorFlow Topic modeling Transformers vLLM

Perks/benefits: Career development Competitive pay Health care Insurance Medical leave Transparency Wellness

Region: North America
Country: United States

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