Data Science Professional - AI & Machine Learning Specialist

BT Group

Bengaluru

Vor Ort

INR 1.800.000 - 3.200.000

Vollzeit

Vor 5 Tagen
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Zusammenfassung

BT Group in Bengaluru is seeking a Data Science Professional to own AI service features within Mind.AI. You will implement production-ready components from design to deployment, benchmark performance, and ship within quality standards.

Independence and ownership are expected as you collaborate with platform, data, and product teams. You will work on RAG pipelines, guardrails, memory management, and multi-agent architectures, plus scalable AI service design and monitoring.

Qualifikationen

  • Experience designing distributed architectures and microservices (Kafka/NATS, REST APIs, security, JWT).
  • Proficient in building AI agents with LangChain/LangGraph; multi-agent workflows and prompt engineering.
  • Strong Python skills (FastAPI, Pydantic); NLP/ML stack (SpaCy, PyTorch, Hugging Face).
  • Experience with Retrieval-Augmented Generation (RAG), embeddings, vector DBs, Elasticsearch/BM25.
  • Expertise in AI safety, evaluation frameworks, prompt injection prevention, red teaming.
  • Data platforms knowledge: PostgreSQL, pgvector, Redis; knowledge graphs (Neo4j).

Aufgaben

  • Build enterprise-grade RAG pipelines for knowledge retrieval and embedding workflows.
  • Develop AI safety guardrails, PII protection, and content redaction controls.
  • Design memory and knowledge management features, including long-term memory and graphs.
  • Define AI evaluation metrics, benchmarks, and data pipelines for model validation.
  • Create scalable production AI services and APIs with observability and cost controls.
  • Develop autonomous agent/multi-agent workflows and orchestration frameworks.

Kenntnisse

Systems architecture
LLM orchestration
Python & AI/ML stack
Retrieval & search
Evaluation & safety
Data platforms

Tools

Kafka
NATS
Docker
Kubernetes
PostgreSQL
Neo4j

Jobbeschreibung

Data Science Professional Job Req ID: 61588 Posting Date: 03 Sep 2026 Location: Bengaluru Salary: Competitive

About the role

You will build and own scoped AI service features within the Mind.AI platform. You work within the architecture set by the Lead AI Engineer, take feature specifications and deliver production-quality implementations: a chunking strategy module, a guardrail model integration, an embedding pipeline stage, a RAGAS metric computation job. You are expected to work independently within scope - take ownership, write tests, benchmark your work, and ship to the Lead's quality bar. You have built ML or AI features in production before. You know that a model that scores well in a notebook evaluation is not done - it needs to be packaged, served, monitored, and maintained. You are comfortable with the full lifecycle from experiment to production deployment.

What you’ll be doing
1.RAG & Knowledge Retrieval
  • Build and optimise enterprise-grade RAG pipelines for accurate knowledge retrieval
  • Develop document ingestion, indexing, embedding, and retrieval workflows
  • Implement hybrid search, re-ranking, and citation-based response generation
  • Improve retrieval quality, relevance, and scalability across large knowledge bases
2.AI Safety & Guardrails
  • Implement PII detection, data protection, and content redaction controls
  • Integrate prompt injection, toxicity, and misuse detection mechanisms
  • Build AI guardrails to ensure safe, compliant, and trustworthy responses
  • Develop automated response quality and faithfulness evaluation frameworks
3.Memory & Knowledge Management
  • Design and implement long-term AI memory frameworks
  • Build user, agent, and organisational knowledge retention capabilities
  • Develop knowledge graph and graph-based retrieval solutions
  • Optimise context management through intelligent summarisation and memory retrieval
4.Evaluation & Optimisation
  • Define and implement AI evaluation metrics and testing frameworks
  • Create and maintain golden datasets for model validation
  • Conduct experiments to improve retrieval, reasoning, and response quality
  • Drive continuous performance optimisation through benchmarking and analytics
5.Platform Engineering
  • Design scalable, production-ready AI services and APIs
  • Optimise latency, throughput, reliability, and cost of AI workloads
  • Build monitoring, observability, and auditability for AI systems
  • Collaborate with platform, data, and product teams to deliver enterprise AI solutions
6.Agentic AI & Multi-Agent Systems
  • Design and develop autonomous AI agents and multi-agent workflows
  • Build orchestration frameworks for planning, reasoning, and task execution
  • Implement agent memory, tool calling, and decision-making capabilities
  • Enable enterprise-scale deployment, governance, and monitoring of agentic solutions
Essential Skills / Experience
  • 1. Systems Architecture Experience with distributed systems and microservices architecture. Knowledge of event-driven systems using Kafka and NATS. Skilled in REST APIs, real-time communication, API security, JWT, rate limiting, and resilience patterns.
  • 2. LLM Orchestration & Agentic AI Experience building AI agents using LangChain and LangGraph. Skilled in single-agent and multi-agent workflows, including ReAct, Planning, and Tool-Use patterns. Strong understanding of prompt engineering, context management, memory, and multi-LLM integration.
  • 3. Python & AI/ML Stack Strong programming skills in Python, FastAPI, and Pydantic. Experience with NLP and AI frameworks including SpaCy, Sentence Transformers, PyTorch, and Hugging Face. Knowledge of ONNX, LoRA/QLoRA fine-tuning, vLLM, LangChain, LangGraph, and RAGAS.
  • 4. Retrieval & Search Experience designing Retrieval-Augmented Generation (RAG) solutions. Skilled in document chunking, embeddings, vector databases, and Elasticsearch (BM25). Knowledge of hybrid search and cross-encoder re-ranking techniques.
  • 5. Evaluation, Safety & Responsible AI Experience with AI evaluation frameworks such as RAGAS and DeepEval. Skilled in benchmarking, LLM-as-a-Judge, and human-in-the-loop evaluation. Knowledge of AI safety, prompt injection prevention, red teaming, and industry safety benchmarks.
  • 6. Data Platforms Experience with PostgreSQL, pgvector, and Redis. Knowledge of Kafka for event streaming and data processing. Skilled in building and working with Neo4j knowledge graphs.
Desirable Skills / Experience
  • 1. Data Platforms & Infrastructure Experience working with ClickHouse for high-performance analytics and data processing. Knowledge of containerization and deployment using Docker and Kubernetes. Skilled in building and managing scalable and cloud-native infrastructure.
  • 2. Observability & MLOps Experience with OpenTelemetry, Dynatrace, and MLflow for monitoring and model management. Skilled in implementing observability through logging, monitoring, and distributed tracing. Knowledge of performance optimization, model tracking, and operationalizing AI/ML workloads.

BT is the UK’s leading communications group and the holding company behind some of the country’s most recognised brands – including BT, EE, Openreach and Plusnet. Our purpose is as simple as it is ambitious: we connect for good. Our customers include consumers, small, medium and large businesses, public sector organisations and other communications providers. Having come through the most capital-intensive phase of our fibre investment, our focus now is on what comes next – simplifying how we operate, using technology and AI to work smarter, and organising ourselves to serve customers better and grow sustainably. We have a singular culture that unites all our people: we are customer-first challengers, who are committed, clear and connected. These behaviours unite us as one team to deliver for our colleagues, our customers, our stakeholders and the country. Joining BT means working at the heart of a business that matters to the UK, with the opportunity to shape decisions, influence outcomes and help set the future course of one of the country’s most important companies.

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