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Deutsche Bank AG based in its India engineering hub seeks an experienced engineer to drive AI-enabled platforms across the bank's IT infrastructure. You will design, build and operate Generative AI, RAG and agentic systems, delivering scalable AI services and enterprise-grade architectures.
You will lead full-stack development using React, TypeScript, Python/Java, and cloud-native patterns, ensuring robust testing, observability and governance across delivery lifecycles.
Job Description: Engineer is responsible for managing or performing work across multiple areas of the bank's overall IT Platform/Infrastructure including analysis, development, and administration. It may also involve taking functional oversight of engineering delivery for specific departments.
At DWS, we're capturing the opportunities of tomorrow. You can be part of a leading, client-committed, global Asset Manager, making an impact on individuals, communities, and the world. Join us on our journey, and you can shape our transformation by working side by side with industry thought-leaders and gaining new and diverse perspectives. You can share ideas and be yourself, whilst driving innovative and sustainable solutions that influence markets and behaviours for the better. Every day brings the opportunity to discover a new now, and here at DWS, you'll be supported as you overcome challenges and reach your ambitions. This is your chance to lead an extraordinary career and invest in your future. Read more about DWS and who we are here.
enables the successful delivery and adoption of strategic themes across DWS. The function acts as the link between business, technology, operations and enabling functions, ensuring that ideas translate into measurable business value. Through stakeholder engagement, governance, and execution support, COO CSM accelerates transformation, innovation, and operational excellence for DWS. COO CSM is a core pillar of DWS' target operating model, bringing together business, product, engineering and enabling functions to accelerate the path from opportunity identification to scalable business outcomes.
Working closely with business, product and technology stakeholders, the team turns early-stage ideas into reusable, scalable solutions that can progress from proof of concept to enterprise adoption.
Extensive hands-on software engineering experience, including the design and delivery of enterprise-scale distributed applications and production-grade AI or Generative AI solutions. Deep expertise in ReactJS and TypeScript, combined with strong Python or Java engineering skills and practical experience with API, microservices and asynchronous application design; experience with FastAPI, Spring Boot or comparable frameworks is beneficial. Strong experience with BigQuery and PostgreSQL, cloud-native architectures, Git-based development, CI/CD, Docker, Kubernetes, infrastructure as code, observability and automated testing; practical knowledge of GitHub or Azure DevOps, Terraform and OpenTelemetry is beneficial. Practical expertise in LLM applications, AI agents, RAG architectures, vector databases, semantic or hybrid search, model evaluation and LLMOps, with hands-on experience in relevant orchestration, evaluation and observability tools. Solid grounding in machine learning, feature engineering, model explainability and analytical modelling, using relevant Python ML libraries. Strong understanding of financial markets and investment products is highly desirable, with experience in asset management, ETFs or mutual funds and knowledge of key investment performance and risk metrics, including Sharpe Ratio, Information Ratio, Sortino Ratio, Alpha, Beta and Tracking Error. Strong engineering mindset and ownership mentality, with sound judgement and the ability to structure ambiguity, solve complex problems, make pragmatic technical decisions and balance delivery speed, quality, risk, maintainability and long-term scalability. Excellent stakeholder management, communication and collaboration skills, with the ability to understand business needs, translate them into clear technical choices, manage expectations, influence decisions and build trusted relationships across business, product, technology and control functions. Demonstrated technical leadership, including the ability to set direction, lead by example, mentor and develop engineers, provide constructive challenge, drive accountability and foster an inclusive culture of learning, experimentation and engineering excellence. Ability to lead delivery across the engineering lifecycle, establish fit-for-purpose standards and working practices, manage dependencies and trade-offs, and maintain focus on measurable business and user outcomes. Bachelor's degree in Computer Science, Engineering, Science or a related discipline, or equivalent professional experience.
We at DWS are committed to creating a diverse and inclusive workplace, one that embraces dialogue and diverse views, and treats everyone fairly to drive a high-performance culture. The value we create for our clients and investors is based on our ability to bring together various perspectives from all over the world and from different backgrounds. It is our experience that teams perform better and deliver improved outcomes when they are able to incorporate a wide range of perspectives. We call this #ConnectingTheDots. For over 150 years, our dedication to being the Global Hausbank for our clients has been driven by our people - in around 60 countries and across more than 150 nationalities. Their deep understanding, insights, expertise, and passion help our clients navigate an increasingly complex world - be it in our Corporate Bank, our Private Bank, our Investment Bank or our Asset Management (DWS) division. Together we can make a great impact for our clients at home and abroad, securing their lasting success and financial security.
More information at: Deutsche Bank Careers (db.com)