Senior Lead Software Engineering
About the position
As Head of Engineering / Senior Lead, Emerging Technology & Software Engineering, you will own the engineering vision and execution for AI-driven experiences within the Pearson Learning Studio (XL+) platform — an AI-first courseware ecosystem layering advanced intelligence on top of a modernized, domain-driven services architecture.
You will lead a global, metrics-driven organization of ~100 engineers and data scientists across multiple scrum teams, shaping the delivery of next-generation learning experiences including Student AI Mentor, Personalized Insights & Recommendations, and analytics powered by Learner Models, Knowledge Graphs, and shared platform services.
This role is for a grounded, low-ego leader who wins through trust, clarity, and execution — someone who builds strong teams, partners deeply with product and business leaders, and consistently turns emerging technology into real-world impact for students and educators.
Responsibilities
• Define and execute the AI and GenAI engineering strategy aligned to Pearson’s learning outcomes and business goals.
• Lead the design, development, and deployment of scalable AI solutions including conversational tutoring, personalization engines, and intelligent insights across the XL+ platform.
• Drive responsible adoption of Generative AI, LLMs, knowledge graphs, and learner modeling frameworks to improve engagement, retention, and learning efficacy.
• Build and mentor a high-performing, psychologically safe engineering culture grounded in humility, ownership, curiosity, and results.
• Lead multiple distributed scrum teams, developing future leaders and ensuring consistent execution excellence across geographies.
• Foster collaboration across product, UX, analytics, content, and commercial teams — removing silos and aligning everyone to shared outcomes.
• Establish clear success metrics across delivery velocity, reliability, quality, adoption, and learner outcomes.
• Create strong operating rhythms using OKRs, agile metrics, experimentation frameworks, and business impact KPIs.
• Translate strategy into execution plans that consistently deliver high-quality outcomes at scale.
• Define standards for architecture, data governance, model lifecycle management, and AI safety.
• Ensure all solutions meet strict standards for accuracy, fairness, compliance, privacy, security, and reproducibility.
• Continuously improve engineering productivity through automation, MLOps/LLMOps, CI/CD pipelines, and modern cloud practices.
• Serve as a trusted partner to senior business, product, and academic leaders — translating technical complexity into clear, actionable decisions.
• Communicate insights and risks with clarity, empathy, and credibility.
Requirements
• Deep expertise in Artificial Intelligence, Machine Learning, Generative AI, LLMs, and AI product engineering.
• Strong background in software engineering, data engineering, analytics platforms, and Python-based ecosystems.
• Proven success leading large, metrics-driven teams in high-growth, complex environments.
• Exceptional interpersonal skills — able to inspire, listen, influence, and build trust without ego.
• Strong systems thinking, with the ability to connect learner needs, business strategy, and technology architecture.
• Track record of applying emerging technologies pragmatically — turning innovation into shipped products.
• Master’s or PhD in Computer Science, Data Science, Engineering, or a related field.
• 10+ years in software engineering, emerging technologies, analytics, and GenAI, including 5+ years leading organizations of 50+ engineers across multiple agile teams.
• Demonstrated experience delivering AI-powered platforms in education, SaaS, or consumer-scale products.
• History of building teams that outperform on delivery, quality, and culture — not through command-and-control, but through clarity, trust, and accountability.
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