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Accenture Technology Strategy & Transformation is seeking a Senior Manager to lead AI-driven SDLC strategy, architecture, and transformation for global clients. You will work with CIOs, CTOs and engineering leaders to define target-state SDLC, prioritise AI use cases, and shape platform and tooling roadmaps across multiple delivery stages.
You’ll engage C-suite stakeholders, translate ambition into actionable roadmaps, and drive governance, value realization and organizational change to scale
Join our team in Technology Strategy & Transformation for an exciting career opportunity to help our most strategic clients realize exceptional value from AI in software delivery, a boardroom priority for organizations globally and be at the forefront of shaping how enterprises adopt AI-native software engineering
Practice: Technology Strategy & Transformation, Global Network Areas of Work: AI Native SDLC Strategy, Agentic AI Architecture, Agentic Software Engineering, Engineering Productivity, AI Platform & Tooling Strategy Level: Senior Manager Location: Bangalore/Gurugram/Mumbai/Pune/Chennai/Kolkata/Hyderabad Years of Exp: 10-15 years Explore an Exciting Career at Accenture
Do you believe software engineering is entering a new AI-native era? Are you a problem solver who enjoys helping CIOs, CTOs, CDOs and engineering leaders rethink how software is imagined, designed, built, tested, secured and delivered using AI? Are you passionate about being part of an inclusive, diverse and collaborative culture? If yes, this is the right opportunity for you. Join Accenture Technology Strategy & Transformation practice and work with global clients to shape the next frontier of enterprise software delivery using AI. Working with C-suite stakeholders, you will help enterprises adopt AI-native software delivery at scale and turn transformation ambition into measurable outcomes. You will help enterprises define AI-powered software delivery transformation strategies and translate them into executable approaches, define target state SDLC, create platform and tooling strategy and architecture, engineering productivity measures, delivery operating model change and measurable value realization.
The Practice – A Brief Sketch
Technology Strategy & Transformation Practice is a part of Accenture Strategy and focuses on our clients’ most strategic priorities. We help clients achieve growth and efficiency through engineering transformation initiatives, aimed at making software delivery powered by AI to bring productivity and quality uplift, resulting in larger enterprise value delivery. We provide you with a strong learning environment, deep-rooted in Technology Strategy, Software Engineering Transformation and AI-led Reinvention, where you will work with key global clients to shape the next evolution of enterprise software delivery. As part of this high-performing team, you will help organizations move from experimentation with AI coding tools to enterprise-wide AI Native SDLC transformation. These are some of the initiatives you will support:
Role Overview
We are looking for a visionary leader in Technology Strategy and Software Engineering Transformation who can help enterprises redefine how software is delivered in an AI-native world. The role requires a senior consulting practitioner with strong understanding of enterprise SDLC, AI/ GenAI and Agentic architecture, engineering productivity, Agile, CI/CD and DevSecOps. The successful candidate will lead strategic advisory work across the AI Native SDLC transformation journey from current-state maturity and AI readiness assessment to target-state SDLC design, AI use case prioritization, platform and tooling strategy, value case development, benefits framework, roadmap definition and operating model change. The role requires executive presence, strong consulting capability and the ability to independently engage CIOs, CTOs, CDOs, CISOs, engineering leaders and product/platform teams. The candidate should be able to shape compelling transformation narratives, facilitate senior stakeholder alignment and translate AI-powered software delivery ambition into practical, business-aligned decisions and measurable outcomes.
Enterprise Software Engineering and SDLC: Strong understanding of enterprise software delivery, including Agile, DevOps, DevSecOps, CI/CD, test automation, secure SDLC, release management, platform engineering and SRE concepts. Ability to assess SDLC maturity, engineering practices, delivery bottlenecks, toolchains, governance and productivity across large, distributed engineering organizations. Strong understanding of engineering productivity, developer experience, software quality, technical debt, application complexity and delivery value streams. Ability to design future-state SDLC processes, governance models and transformation roadmaps aligned to business and engineering outcomes.
Application Architecture, Engineering and AI: AI / Agentic Fluency, Tools and Platform Capabilities: Strong understanding of GenAI, LLMs and agentic software engineering concepts, including prompt engineering, context engineering, RAG, MCP, agent orchestration, MCP, guardrails and evaluations. Practical understanding of AI-assisted SDLC use cases across requirements, backlog, architecture, coding, code review, refactoring, testing, security, documentation, release support and operations handover. Familiarity with leading AI coding and SDLC tools such as GitHub Copilot, OpenAI Codex, Claude Code, Cursor, Windsurf, GitLab Duo, Amazon Q Developer, Gemini Code Assist, Sourcegraph Cody, Atlassian Rovo or equivalent tools. Familiarity with AI platforms and agentic orchestration tools such as Microsoft/Azure AI Foundry, Amazon Bedrock, Google Vertex AI, LangGraph, LlamaIndex, Semantic Kernel, AutoGen/CrewAI, LangSmith/MLflow or equivalent platforms. Understanding of enterprise context and knowledge architectures using code indexing, embeddings, vector databases, enterprise search, knowledge graphs, RAG and model ecosystems including OpenAI, Anthropic, Gemini, Llama and open-source models. Ability to define toolchain architecture, vendor evaluation criteria, integration patterns, pilot approach, rollout considerations and governance required for scalable AI Native SDLC adoption.
Value, Economics and Productivity Measurement: Ability to formulate AI Native SDLC value cases across productivity, cycle time, quality, risk, cost, developer experience and business agility outcomes. Strong understanding of productivity measurement approaches including DORA, SPACE, flow metrics, adoption telemetry, developer surveys, quality metrics and release metrics. Ability to assess AI economics, including license cost, token consumption, model usage, cost-to-serve, utilization, chargeback/showback and benefit realization governance. Ability to connect AI adoption choices to measurable business outcomes and executive-level investment decisions.
Consulting and Communication Skills: Strong consulting toolkit across structured problem solving, hypothesis-led analysis, benchmarking, assessment design, facilitation, executive storytelling, business case development and roadmap definition. Ability to drive CxO-level conversations with credibility, influence senior stakeholders and align business, engineering, architecture, security, finance and technology teams. Ability to independently lead client discussions, develop thought leadership, create compelling transformation narratives and shape opportunities in ambiguous environments. Experience leading proposals, strategic pursuits, senior client relationships and high-performing consulting teams.
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