AI Engineer
About DXC
Required Technical Skills
Python
Prompt engineering
LLM integration
MCP (Model Context Protocol)
Vector databases
JSON
Markdown
Data modelling for AI
Data quality for AI
Analytical data design
GitHub Copilot and Claude Code
Advantageous Skills
C# / .NET Core – understanding existing backend for integration and migration planning
JavaScript / TypeScript
SQL (Oracle, MSSQL, PostgreSQL, ClickHouse)
Docker / Kubernetes
Grafana / observability tooling
RAG (Retrieval-Augmented Generation)
Fine-tuning, RLHF, evaluation frameworks
Event-driven architectures
Salesforce Einstein AI or similar enterprise AI platforms
dbt, Great Expectations or similar data quality tooling
AI-First Cognitive Requirements
Evaluative cognition shift
Sycophancy detection
Constitution design expertise
Adversarial verification design
Data-chain awareness
Key Responsibilities
- Design and own the data foundations for AI – modelling existing costing structures, bid history, and financial factors into AI-consumable schemas; data quality is the prerequisite for every AI output
- Build data profiling and quality assessment pipelines – understanding what data we currently have, what is reliable, and what must be cleaned or restructured before AI can use it
- Design LLM-based replacements for rigid legacy business logic – costing rules, allocation algorithms, and financial calculations expressed as AI-driven decision systems
- Build MCP-based AI skills that give LLMs structured access to current services, databases, and business logic – creating the foundation for an AI-native platform
- Design and implement AI constitutions and guardrails encoding domain rules, pricing logic constraints, audit requirements, and data quality checks
- Develop vector-based knowledge retrieval systems for documentation, architecture decisions, bid history, and institutional knowledge
- Create AI-augmented developer tooling – specification templates, automated verification pipelines, and AI-assisted code review that catches “looks right vs. is right” failures
- Design and build an AI-driven workflow engine to replace complex legacy orchestration patterns (125+ rigid service chains) with intelligent, self-adapting agents Establish metrics and measurement for AI-first adoption and platform modernisation progress
- Support the team's transition to the Intent → Generate → Verify → Decide → Document workflow loop
- Prototype and validate next-generation architecture patterns – proving that AI-native approaches can replace current complexity
This role is responsible for reducing its own bus factor. Concrete expectations
- Run regular AI literacy sessions with the whole team, including the two testers who are natural candidates for AI verification and prompt engineering backup roles
- Train both testers on AI constitution design and adversarial verification techniques so that AI guardrail maintenance does not depend on a single person
- Document all data models, embedding schemas, MCP tool definitions, and vector retrieval configurations in version-controlled Markdown; every AI skill must have a corresponding specification document
- Pair with Position 1 (backend) to jointly own the data modelling decisions for the replacement platform; data architecture knowledge must overlap with at least one backend developer
- Establish a “AI knowledge base” in the team's wiki covering prompt patterns, constitution templates, and data quality rules, accessible and maintainable by the whole team within 6 months
At DXC Technology, we believe strong connections and community are key to our success. Our work model prioritizes in-person collaboration while offering flexibility to support wellbeing, productivity, individual work styles, and life circumstances. We’re committed to fostering an inclusive environment where everyone can thrive.
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Not included in the source posting: benefits.
Skills
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