DataVisor is the world's leading AI-powered Fraud and Risk Platform that delivers the best overall detection coverage in the industry. We are seeking a Security Engineer who possesses expertise in cloud environments and a strong focus on securing AI/LLM deployments. You will be part of a team that protects system boundaries, keeps computer systems and network services hardened against attacks, and secures sensitive data.
🏢 About DataVisor
DataVisor's platform is architected to support multiple use cases across different business units flexibly, dramatically lowering the total cost of ownership, compared to legacy point solutions. DataVisor is recognized as an industry leader and has been adopted by many Fortune 500 companies across the globe. Our award-winning software platform is powered by a team of world-class experts in big data, machine learning, security, and scalable infrastructure. Our culture is open, positive, collaborative, and results driven.
🎯 The Role
You will collaborate closely with our team to ensure that our products, cloud environments, and AI integrations are built to industry security standards and best practices.
✅ Key Responsibilities
Assess and secure AI/LLM deployments and integrations — including Model Context Protocol (MCP) and other LLM connector requests — through threat modeling, guardrail design, and risk assessment prior to approval
Perform daily security monitoring across cloud and infrastructure, spanning cloud security posture management (CSPM), SIEM and log analysis, cloud-native threat detection, database activity monitoring, and security orchestration, automation, and response (SOAR)
Leverage SIEM tooling for real-time analysis of security alerts generated by our cloud infrastructure and applications
Own the security of our entire AWS and GCP environments — including IAM, compute, storage, networking, and workload configurations — hardening the footprint, enforcing baselines, and remediating misconfigurations and vulnerabilities across both clouds
Participate in incident management, change management, security policy management, and security incident response
Contribute to SOC 2, PCI DSS, and ISO 27001 compliance programs
📌 Required Qualifications
Bachelor's degree in Computer Science, Information Security, or a related technical field
5+ years of security engineering experience, including at least 2 years focused specifically on AI/ML security
Hands-on experience securing AWS and GCP environments, including core services such as IAM, EC2, S3, VPC, and their GCP equivalents (IAM, Compute Engine, Cloud Storage, VPC)
Experience with CSPM for continuous detection and remediation of cloud misconfigurations
Experience securing AI/LLM deployments in cloud environments — including deploying and hardening foundation models such as Claude on AWS (e.g., Amazon Bedrock) with guardrails, input/output filtering, prompt-injection defense, output validation, and data-egress controls
Hands-on assessment of MCP and LLM connector integrations against OWASP guidance — covering prompt injection, cross-connector chaining, OAuth scope minimization, tool-access boundaries, and untrusted-content handling
Working knowledge of AI security frameworks and standards: NIST AI RMF, OWASP LLM Top 10, OWASP guidance for MCP and agentic systems, and MITRE ATLAS
Ability to threat-model and risk-assess AI systems, agentic workflows, and third-party AI integrations prior to approval
Understanding of core security concepts — cryptography, authentication, authorization, security protocols, and vulnerability classes — as applied to web application and cloud service security
Deep technical understanding of common security vulnerabilities and risks, along with countermeasures and compensating controls
Solid grasp of IP networking protocols: IPv4/IPv6, TCP/UDP, DHCP, HTTPS, FTP, and similar
🎁 Benefits
Salary ranges between USD 120,000 -150,000 /year Total compensation includes base salary, performance bonuses, and equity options. Comprehensive medical, dental, and vision insurance coverage. 401(k) retirement savings plan available. Discretionary paid time Off (DTO) plus paid holidays. Remote work may be considered for candidates located outside a 50-mile radius of Mountain View.
🛂 Visa & Eligibility
DataVisor does not discriminate on the basis of race, sex, color, religion, age, national origin, marital status, disability, veteran status, genetic information, sexual orientation, gender identity or any other reason prohibited by law in provision of employment opportunities and benefits.
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