Sec Ops Architect I

o9 Solutions Management India Private Limited

United States

On-site

USD 190,000 - 270,000

Full time

14 days+

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Job summary

o9 Solutions is seeking a Senior AI Security & MLSecOps Architect to lead AI-native security for the GenAI platform and agentic AI ecosystem. You will own governance, threat detection, model risk management, and cross-system security for production AI agents and LLMs.

You will design UEBA-style agent security, SBOM pipelines, RAG security, and scalable telemetry across cloud and on-prem environments. Mentorship and security maturity drive for a fast-growing enterprise.

Qualifications

  • 10+ Years in cybersecurity engineering, AI security, or security data science.
  • 3+ Years AI Security / MLSecOps in production scale.
  • AI Agent Engineering with autonomous agents and tool-use.
  • Security Platform Depth: EDR, SIEM, SOAR, WAF/ZTNA, PAM at scale.
  • Cloud & Kubernetes security across multi-tenant SaaS environments.

Responsibilities

  • Own security architecture for GenAI platform with governance and auditable controls.
  • Design agent identity controls, baselining, and containment for production agents.
  • Architect SBOM/SBOM pipeline with model provenance and supply chain trust.
  • Security for RAG pipelines: allowlisting, isolation, PII scrubbing and anomaly monitoring.
  • Define security gates for cross-system integrations and token governance.
  • Align AI security controls to ISO 42001, NIST AI RMF, MITRE ATLAS, and OWASP Top 10 for LLMs.
  • Build ML models to convert telemetry into predictive defense.
  • Develop autonomous security agents with end-to-end observability.

Skills

AI security
MLSecOps
Security architecture
Kubernetes
Cloud security
Python

Education

Bachelor’s in Computer Science or related
Master’s in CS, Data Science, AI, or Cybersecurity

Tools

LangChain
CrewAI
LangGraph
MLflow

Job description

Senior AI Security & MLSecOps Architect

Technology — AI Trust & Cyber Security | Bangalore, India | Full-Time

We are looking for a Senior AI Security & MLSecOps Architect to lead the next generation of AI-native security at o9. You will own two parallel missions: securing o9’s GenAI platform and agentic AI ecosystem from emerging threats, and building AI/ML-driven capabilities that transform how our security operations detect, predict, and respond to adversarial activity across 500+ customer environments. Our security platform ingests 22 billion events per month across 176,000+ hosts, 266 Kubernetes clusters, and 3,042 cloud accounts. The intelligence hidden in that telemetry remains largely unmined. Simultaneously, o9’s GenAI platform is scaling rapidly — production AI agents, RAG pipelines, MCP tool integrations, and autonomous planning workflows that introduce a fundamentally new class of security risk. This role exists to address both.

What you’ll do for us

AI Platform Security & Governance

Own the security architecture for o9’s GenAI platform — ensuring every AI agent, model, and integration is governed, auditable, and stoppable.

AI Agent Security Architecture: Design and enforce agent identity controls, permission scoping, and behavioural baselining for all production AI agents. Build UEBA-style models that detect when an agent deviates from learned tool-call patterns, data-access scope, or egress destinations — triggering automated containment via kill-switch controls.

AI SBOM & Model Risk Management: Architect the AI Bill of Materials (AIBOM/SBOM) pipeline — model provenance verification, hash integrity, dependency scanning, and supply chain trust for every LLM, embedding model, and agent deployed to production. Ensure no model reaches production without a signed inventory entry.

RAG & Prompt Security: Design security controls for retrieval-augmented generation pipelines — source allowlisting, tenant isolation, PII scrubbing, indirect prompt injection detection, and embedding anomaly monitoring. Secure the retrieval boundary as the highest-risk component in the AI stack.

Cross-System AI Integration Security: Define security review gates for AI integrations with enterprise systems (ticketing, DevOps, observability, MCP servers). Enforce token governance, credential rotation, blast-radius modelling, and data classification for every cross-system data flow.

AI Governance & Compliance: Align AI security controls to ISO 42001, NIST AI RMF, MITRE ATLAS, and OWASP Top 10 for LLM Applications. Maintain audit trails for every model decision. Support EU AI Act and DPDPA compliance evidence generation.

AI/ML Engineering for Security Operations

Build ML models and autonomous agents that convert raw security telemetry into predictive, actionable defence.

Threat Detection & Anomaly Modelling: Build, fine-tune, and deploy ML models that detect anomalous patterns, novel attack variations, and stealthy TTPs mapped to MITRE ATT&CK across the full telemetry corpus — including predictive weak-point analysis that scores which assets or identities are most likely to be exploited next.

Autonomous Security Agents: Architect and build the autonomous security agent layer — threat-hunting agents, vulnerability-management agents, configuration-audit agents, and incident-response agents operating at machine speed. Define full observability: reasoning traces, tool calls, results, and outputs — tamper-proof and forensically auditable.

LLM-Powered SOAR & Enrichment: Evolve SOAR playbooks from rule-based automation to ML-driven, context-aware orchestration — integrating LLM-based enrichment into triage and response decision loops. Reduce false-positive rates (target: <20%) while preserving detection fidelity.

Identity Threat Scoring: Build ML-powered identity risk scoring on top of identity protection telemetry — reducing identity threat risk scores and maintaining them autonomously through continuous model retraining from red team findings.

Security Telemetry & Platform Operations

Ensure scalable, real-time security visibility across o9’s entire infrastructure and customer environment footprint. Telemetry Pipeline Architecture: Design scalable, real-time pipelines that ingest, normalise, and correlate high-velocity security telemetry from EDR, WAF/ZTNA, PAM, cloud environments (AWS, Azure, GCP), and DevOps toolchains into a unified, enriched security data model. Detection Engineering & Correlation: Build cross-platform correlation logic joining identity signals, endpoint behavioural data, network events, and privileged-access telemetry. Author detection rules and tuning frameworks that reduce noise while preserving true-positive fidelity. Shift-Left DevSecOps: Embed security telemetry and policy-as-code requirements into the CI/CD pipeline so every new service, agent, and integration is observable from day one — not instrumented retrospectively. Integrate ML enrichment into vulnerability exposure scoring with predictive remediation prioritisation.

Technical Leadership & Research

Architecture Authority: Serve as the technical authority for AI security and MLSecOps across the security programme — defining standards, reviewing architectures, and raising AI security maturity across the organisation. Research & Innovation: Evaluate emerging AI security techniques (agent-based threat hunting, LLM-powered forensics, graph-ML for lateral movement detection, neurosymbolic trust boundaries) and translate research into production capabilities. Mentorship: Coach security engineers in ML/AI fundamentals and ML engineers in security domain knowledge — building a team that bridges both disciplines.

What you’ll have

Experience & Profile

10+ Years Overall: Progressive hands-on experience in cybersecurity engineering, AI security, or security data science — with a foundational identity as a software engineer who developed deep security expertise. 3+ Years AI Security / MLSecOps: Proven experience in AI platform security (agent governance, model risk, RAG security) or building and operationalising ML models for security use cases at production scale. AI Agent Engineering: Demonstrated experience building autonomous agents using frameworks such as CrewAI, LangChain, LangGraph, or equivalent — including tool-use, multi-agent orchestration, and agent observability. Security Platform Depth: Hands-on experience with enterprise security platforms — EDR, NG-SIEM, SOAR, WAF/ZTNA, PAM, or equivalents at comparable scale. Cloud & Kubernetes: Deep experience securing large-scale containerised environments across AWS, Azure, and GCP — with exposure to multi-tenant SaaS architectures.

Technical Skills

Languages & Data Engineering: Python for ML model development, pipeline authoring, and security automation. Streaming and batch platforms (Spark, Kafka, Elasticsearch, or equivalent). ML Frameworks & LLM Integration: ML frameworks (scikit-learn, XGBoost, PyTorch) and LLM/agent orchestration (LangChain, CrewAI). Experience integrating LLM APIs into security workflows via prompt engineering and RAG pipelines. Security Frameworks: MITRE ATT&CK, MITRE ATLAS, OWASP Top 10 for LLM Applications, NIST AI RMF, ISO 42001, ISO 27001. Ability to map AI risks and ML model outputs to specific TTPs. Observability & MLOps: ML model lifecycle management (MLflow or equivalent), experiment tracking, model drift detection, and production monitoring for security ML models.

Education & Certifications

Education: Bachelor’s in Computer Science, Software Engineering, or related discipline required; Master’s in CS, Data Science, AI, or Cybersecurity highly preferred. Certifications: Relevant certifications are a strong plus: cloud security specialties (AWS/Azure/GCP), CISM, MITRE ATT&CK Defender, or SANS AI/ML security courses. We value demonstrated hands-on capability over certification count.

More about us…

With a $3.7 billion valuation and a global presence across Dallas, Amsterdam, Barcelona, Madrid, London, Paris, Tokyo, Seoul, and Munich, o9 is among the fastest-growing technology companies in the world. Our security organisation holds the #1 BitSight ranking in our peer group — protecting 500+ customer environments across 60+ countries, 176,000+ hosts, and 6M+ lines of code under continuous CI/CD security. o9 is an equal-opportunity employer that values diversity and inclusion. We welcome applicants from all backgrounds, ensuring a fair and unbiased hiring process. Were continuing to grow and invite you to join us as we build the future of AI-powered enterprise planning. We have a vision. Our Digital Brain, o9’s AI-powered platform, is being used by global enterprises to drive their digital transformations. The integrated planning and operational efficiencies we provide is helping businesses do more, be more and mean more to the world at large. Because businesses that plan better, reduce waste, creating value for themselves and the planet. But we also have a vision for our people. We want the most talented, committed and driven people to power our transformative approach. As an individual and in a team, your actions reflect our values. In return, we’ll provide a nurturing environment where you can be a part of something special.

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