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Sr. Staff, Data Science & Applied AI

External
Warner Bros. Discovery logoWarner Bros. Discovery · Hyderabad - Phoenix Equinox Tower 2
Full-timeOn-siteToday
AWSCI/CDComplianceGenerative AILeadershipMachine Learning
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Welcome to Warner Bros. Discovery... the stuff dreams are made of. Who We Are... When we say, "the stuff dreams are made of," we're not just referring to the world of wizards, dragons and superheroes, or even to the wonders of Planet Earth. Behind WBD's vast portfolio of iconic content and beloved brands, are the storytellers bringing our characters to life, the creators bringing them to your living rooms and the dreamers creating what's next... From brilliant creatives, to technology trailblazers, across the globe, WBD offers career defining opportunities, thoughtfully curated benefits, and the tools to explore and grow into your best selves. Here you are supported, here you are celebrated, here you can thrive. As Sr. Staff - Data Science & Applied AI (Agentic AI), you will be a core technical contributor within WBD's AI Center of Excellence (CoE). This role is designed for a hands-on senior architect who operates at the intersection of enterprise architecture, applied AI, Generative AI, agentic AI, and cloud platform engineering. You will translate complex business challenges into scalable AI solution architectures, production-ready platforms, and reusable technical patterns that drive measurable enterprise value. You will serve as a senior individual contributor, partnering closely with Product, Engineering, Data, Security, and Business stakeholders to design, govern, and scale modern AI solutions across the organization. The role combines solution architecture leadership with deep expertise in GenAI application design, agentic systems, and AI cloud architecture on AWS and Snowflake. Enterprise AI Solution Architecture Define end-to-end solution architecture for enterprise AI, GenAI, and agentic AI applications aligned to business and technology strategy. Translate business workflows and operational challenges into scalable AI solution patterns, including autonomous and semi-autonomous agent use cases. Partner with product, engineering, data, and business teams to move AI and GenAI use cases from concept and pilot into production at enterprise scale. Create reusable architecture patterns, accelerators, reference implementations, and technical standards to speed AI adoption across teams. Agentic AI Architecture Design enterprise agentic AI solutions leveraging multi-agent orchestration, tool invocation, memory, planning, reasoning flows, and human-in-the-loop control mechanisms. Establish design guardrails, evaluation frameworks, monitoring approaches, and observability standards for agent behavior in production. Integrate agent-based systems with enterprise APIs, structured and unstructured data platforms, workflow engines, and knowledge sources. Drive architecture decisions around scalability, resilience, security, governance, and operational control for agent-based applications. Productionization, Engineering & Governance Collaborate with Data Engineering, Platform Engineering, DevOps, and Security teams to productionize AI and GenAI solutions in scalable cloud environments. Design CI/CD and automation patterns for model deployment, prompt/version management, testing, release control, and operational support. Implement monitoring for model drift, prompt drift, performance degradation, usage patterns, system health, and data integrity. Support governance, risk management, and responsible AI initiatives by embedding security, privacy, compliance, and auditability into solution design. Innovation & Technical Leadership Stay current with advancements in foundation models, multimodal AI, agent frameworks, orchestration patterns, and cloud-native AI services. Provide architecture guidance, design reviews, and technical mentorship across cross-functional teams. Contribute to enterprise-wide AI best practices, reusable frameworks, and technical decision-making to elevate the maturity of the AI ecosystem. Qualifications & Experiences: Bachelor's degree, Master's degree, or higher in Computer Science, Data Science, Engineering, Mathematics, Statistics, or a related quantitative discipline. 8+ years of relevant experience in solution architecture, data science, machine learning, or AI engineering, with at least 2+ years of experience in Generative AI / LLM-based solutions. Demonstrated track record of designing and delivering production-grade AI/ML/GenAI solutions with measurable business impact. Strong experience in architecting enterprise AI solutions across business workflows, data ecosystems, and cloud platforms. Hands-on expertise in building and scaling GenAI and LLM applications, including prompt engineering, RAG architectures, semantic search, embeddings, and evaluation frameworks. Experience designing or supporting agentic AI systems, including orchestration, tool usage, memory, guardrails, and human oversight patterns. Deep understanding of cloud-native AI/ML architecture principles, including deployment patterns, platform reliability, observability, security, and cost optimi


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Sr. Staff, Data Science & Applied AI at Warner Bros. Discovery