AI Architect

MathCo

Bengaluru

On-site

INR 4,000,000 - 7,000,000

Full time

11 days ago

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Job summary

MathCo in Bengaluru, a global Enterprise AI and Analytics company, seeks a seasoned AI Architect to design scalable GenAI architectures and lead cross-functional teams.

You will define patterns, implement RAG pipelines, ensure security and cost efficiency, and mentor engineers while shaping the system architecture across cloud environments.

Qualifications

  • 10+ years in software engineering with architecture roles.
  • Proven track record delivering cloud-native production systems at scale.
  • Hands-on with GenAI/LLM, RAG, and agentic frameworks.
  • Experience integrating ML/LLM with enterprise data platforms; security/compliance.

Responsibilities

  • Design scalable cloud-native GenAI architectures (microservices, event-driven, serverless).
  • Define data flows, integration patterns for LLMs, vector stores, and tools.
  • Produce architecture artifacts and run architecture reviews with stakeholders.

Skills

Cloud-native architectures
GenAI systems
Cross-functional leadership
Security/compliance
LLMOps / MLOps

Tools

Kubernetes
Docker
Terraform
LangChain
Hugging Face Transformers

Job description

TheMathCompany or MathCo® is a global Enterprise AI and Analytics company trusted by leading Fortune 500 and Global 2000 enterprises for data-driven decision making. Founded in 2016, MathCo builds custom AI and advanced analytics solutions to solve enterprise challenges through its hybrid model. NucliOS, MathCo’s proprietary platform, enables connected intelligence at a lower total cost of ownership (TCO).

At MathCo, we foster an open, transparent, and collaborative culture, making it a great place to work. We provide exciting growth opportunities and value capabilities and attitude over experience, enabling our Mathemagicians to 'Leave a Mark'.

We’re looking for a seasoned AI Architect with deep expertise in cloud-native enterprise systems and Generative AI. You will define and deliver scalable, secure, and production-grade GenAI architectures — including multi-agent, RAG, LLMOps and AgentOps systems — and lead cross-functional teams to build and operate them. This role combines hands-on technical leadership, systems thinking, and strong stakeholder management.

Responsibilities:
  • Design scalable, modular, and cloud-native architectures for GenAI applications (microservices, event-driven, serverless).
  • Define system boundaries, data flows, orchestration, and integration patterns for LLMs, vector DBs, embedding services, and tool integrations.
  • Produce architecture artifacts (Layered Architecture Diagrams, C4 Models, DFDs, Class, Sequence, ER & Use Case diagrams, different types of blueprints, API contracts, design and trade-off decisions).
GenAI & Agentic Systems
  • Architect and deliver Retrieval-Augmented Generation (RAG) pipelines, Natural Language to SQL Flows, fine-tuning strategies, multi-modal capabilities, and tool-augmented agents.
  • Design agent orchestration and multi-agent frameworks enabling planning, reasoning, and secure tool invocations, implement and design Agent prototypes and Communication Protocols.
  • Define prompt engineering standards, memory models (episodic/semantic/procedural), and context management.
  • Agentic AI security — provable agent identity/attestation, tool allowlist + human gate for high-risk actions; ephemera scoped tokens, sandboxed execution, and replayable audit traces.
Observability, Ops & Cost Optimization
  • Define telemetry, tracing, and logging for models and agents; monitor performance, drift, hallucination rates and user feedback loops.
  • Build dashboards, alerts and runbook guidance for operational health.
  • Design systems for cost efficiency (autoscaling, spot instances, serverless choices) and support FinOps practices.
  • Lead cross-functional teams (product, data science, AI engineers, platform) through architecture reviews, workshops, and technical decisioning.
  • Maintain architectural standards, documentation, playbooks, and pattern libraries for GenAI systems.
  • Mentor engineers and evangelize best practices across the organization.
Qualifications
  • 10+ years software engineering experience with 3+ years in architecture or senior technical leadership roles (or equivalent).
  • Proven track record designing and delivering cloud-native, production systems at enterprise scale.
  • Hands-on experience with GenAI/LLM systems, RAG, NL-SQL, agentic frameworks or similar productionized AI applications.
  • Strong knowledge of system design patterns (microservices, event-driven, CQRS, hexagonal architecture), and Low Level Design Patterns.
  • Experience integrating ML/LLM services with enterprise data platforms and APIs while meeting security/compliance requirements.
  • Solid engineering background in at least two languages (Python, TypeScript, Go, Java, C#) and familiarity with modern frameworks.
Required Skills
Technical skills & technologies (comprehensive)
  • Cloud & Infra: AWS / Azure / GCP; Kubernetes, Docker, serverless (Lambda, Functions, Cloud Run), GPU instances.
  • GenAI & ML: Hugging Face Transformers, OpenAI APIs, LangChain, LlamaIndex, Semantic Kernel, Haystack.
  • Vector Stores: FAISS, Pinecone, Weaviate, Chroma, Postgres+pgVector, and other cloud vector stores.
  • LLMOps / MLOps: Custom Development of Ops Pipelines, MLflow, TFX, BentoML, Kubeflow.
  • DevOps & IaC: Terraform, Pulumi, CloudFormation, GitHub Actions, Jenkins.
  • Observability & Security: Prometheus, Grafana stack, OpenTelemetry, Jaeger, ELK, Datadog; Vault, IAM, LDAP/OAuth2/OIDC/SAML Connect, Snyk, SonarQube, SAST/SCA in pipelines, OWASPs, CWEs, CVEs.
  • Agent frameworks / tools: Understanding of Basics of Agents required, Langgraph, Autogen, AutoGPT, AgentVerse, MetaGPT, CrewAI etc.
  • Performance & scalability: SSR/ISR, caching strategies (CDN, edge), lazy loading, bundle optimization, performance budgets.
  • Realtime & async: WebSockets, SSE, message brokers (Kafka, RabbitMQ), background workers.
  • Frontend frameworks: React (Next.js), Angular, Vue; component libraries and state (Redux/RTK, Context, Pinia, Zustand).
  • Styling & UI tooling: Component Libraries, Accessibility best practices, Responsive UI.
  • Frontend build & tooling: Vite, Webpack, Storybook, UI Frameworks.
  • Backend frameworks: Node.js/Express, FastAPI, serverless functions (AWS Lambda, Cloud Functions).
  • API design & integration: REST, gRPC, OpenAPI/Swagger, API versioning and contract testing, GraphQL (Optional).
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