For over 35 years, F-Secure has led the cybersecurity industry with our 200+ service provider partners. As the home of scam protection, were reimagining how we protect people from modern threats through cutting-edge scam detection and solutions that are setting the industry standard. We bring together the sharpest minds of cyber security with a shared purpose: to protect people from modern threats. Here, you’ll have a real impact, making every digital moment more secure for everyone. You’ll thrive and grow in our Fellowship culture, where we dream big, trust, and challenge each other to deliver results and move with speed. You’ll be welcomed into a diverse, global team with an informal and collaborative culture where your voice truly matters.
Join us in securing the digital world together – where your work will make a lasting impact.
We are seeking an innovative AI Engineer to build next-generation scam detection and fraud prevention systems. Using LLMs, GenAI, and deep learning, you will protect users from increasingly sophisticated AI-powered scams, phishing attacks, and social engineering threats. This role is at the cutting edge of AI safety and adversarial AI defense.
Youll work on designing and deploying LLM-powered detection systems that identify AI-generated scams and synthetic fraud. Youll develop advanced prompt engineering strategies and guardrails to detect malicious patterns, and create AI safety frameworks including content moderation and behavioral anomaly detection. Your work will directly contribute to F-Secures mission as the home of scam protection, protecting millions of users across 50+ countries.
As part of our growing Bengaluru office, youll collaborate with a global team of security researchers, data scientists, and engineers across Finland, Malaysia, Slovakia, and the US. Youll have the opportunity to shape how AI is used to combat the evolving landscape of digital threats.
This role offers hybrid working arrangements in Bengaluru, with flexibility to balance remote work and office collaboration.
Key Responsibilities In This Role
Design and deploy LLM-powered scam detection systems using GPT-4, Claude, Llama, or similar foundation models
Develop advanced prompt engineering strategies and guardrails to detect AI-generated scams and synthetic fraud
Build semantic analysis pipelines using transformers and embeddings to identify phishing content and malicious patterns
Implement RAG (Retrieval-Augmented Generation) systems with vector databases to match known scam signatures and emerging threats
Create AI safety frameworks including content moderation, toxicity detection, and behavioral anomaly systems
Deploy scalable AI systems on AWS using SageMaker, Lambda, and real-time inference endpoints
Build deep learning models for pattern recognition and text classification
Monitor adversarial attacks, conduct red-teaming exercises, and continuously improve detection algorithms against evolving threats
What are we looking for?
Bachelors or Masters degree in Computer Science, AI, Machine Learning, or related field
3-5 years of experience building production AI systems, preferably in fraud detection, trust & safety, or security domains
Proven track record of deploying LLM-based applications that handle adversarial or high-stakes scenarios
Strong AWS proficiency with hands-on experience in SageMaker, Lambda, S3, and AI/ML services
Strong LLM experience: API integration (OpenAI, Anthropic, etc.), prompt engineering, and guardrail implementation
Proficiency with LLM frameworks: LangChain, LlamaIndex, Haystack, or similar orchestration tools
Solid deep learning experience using PyTorch or TensorFlow, with understanding of transformer architectures
Strong NLP skills with Hugging Face Transformers, sentence embeddings, and semantic similarity techniques
Experience with vector databases (Pinecone, Weaviate, ChromaDB) for RAG systems
Understanding of adversarial AI, model security, jailbreaking techniques, and AI safety principles
Youll Stand Out If You Have
Experience in cybersecurity, fraud prevention, or trust & safety engineering
Experience with AWS Bedrock or other managed LLM services
Knowledge of model fine-tuning techniques (LoRA, QLoRA, PEFT, RLHF) and experience adapting LLMs for specific domains
Familiarity with AI red-teaming, jailbreak detection, and prompt injection defenses
Understanding of real-time streaming architectures (Kafka, Kinesis) for live threat detection
Knowledge of multi-modal AI (text, image, audio) for detecting deepfakes and comprehensive scam detection
Experience with computer vision for detecting fake documents or manipulated images
Contributions to open-source AI safety or security projects
What you will get from us?
Welcome to the good side – the home of scam protection! Work with industry-leading experts defining the future of cybersecurity and scam protection
Be an AI pioneer, not a follower. Access industry-leading tools like Claude and Claude Code, with full support to integrate AI into your daily work while others are still figuring out policies. Were not asking "if" but "how" AI transforms our work, positioning you at the forefront of the industry.
Thrive in our Fellowship culture where we empower, trust, challenge, and support each other in doing our best work.
Flexible work that works for you – hybrid and remote options with team-agreed ways of working.
Inclusive environment with flat, approachable leadership in our diverse global community.
Comprehensive global benefits including Employee Share Savings Plan (ESSP), Fellow Member of the Board opportunities, and Annual Protect & Educate paid volunteer day.
Wellbeing support through personal coaching services and one hour per week for personal recharging.
Continuous growth via F-Secure Academy, Leadership programs, AI training, mentoring, and dedicated Learning Week.
A security vetting will possibly be conducted for the selected candidate in accordance with our employment process.
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