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לפני 8 שעות
חברה חסויה
Location: Herzliya
Job Type: Full Time
We're building AI to tackle one of the hardest operational challenges in business: getting workforce management right across many markets, each with its own tax rules, labor laws, payment rails, and constantly shifting policies.
In this role on our AI team, you'll focus on agentic workflow automation. You'll design, build, and deploy reliable AI agents that automate complex HR, payroll, and payment workflows, handling decision-making, document intelligence, and complex tasks that typically require human judgment.
What You'll Do:
Design and build agent-based systems that automate document processing, business insights, and complex enterprise workflows
Build observability, evaluation, and feedback loops for agent behavior to improve reliability, accuracy, and trust in production
Own the technical architecture and engineering standards for agentic systems
Build or manage data pipelines to process large volumes of documents and unstructured data
Collaborate with domain experts to identify high-value automation targets and deliver end-to-end solutions
Stay current on agent frameworks, LLM capabilities and limitations, and apply emerging patterns pragmatically in production
Requirements:
4+ years of experience in software engineering, AI/ML engineering, or a similar role with strong engineering fundamentals
Experience building or integrating production LLM systems, AI agents, or workflow automation solutions
Strong Python skills and solid software engineering principles
Familiarity with orchestration and agent frameworks such as LangGraph, OpenAI/Claude Agents SDK, or similar tools
Strong understanding of prompting, retrieval, tool use, and orchestration patterns, including their limitations in production
Experience with cloud platforms and containerized deployments
High ownership, strong problem-solving skills, and comfort working in ambiguous environments
BS/MS in Computer Science, Engineering, Data Science, or equivalent practical experience
This position is open to all candidates.
 
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לפני 8 שעות
חברה חסויה
Location: Herzliya
Job Type: Full Time
We're building AI to tackle one of the hardest operational challenges in business: getting workforce management right across many markets, each with its own tax rules, labor laws, payment rails, and constantly shifting policies.
In this role on our AI team, you'll build and scale core AI systems that power products. You'll work across agentic document intelligence, autonomous agents, compliance AI, and ML-powered insights, prototyping quickly, building robust evaluations, and shipping production-grade AI with real business impact.
What You'll Do:
Build and ship AI/ML solutions using LLMs, agents, RAG, and document understanding models, alongside classic ML
Prototype quickly, validate feasibility, and turn strong POCs into production systems
Evaluate models and architectures, apply testing and guardrails to improve agent and service reliability
Research and apply emerging techniques: multimodal/document AI, agentic frameworks, synthetic data generation, and new architectural approaches
Work cross-functionally with product, R&D, and compliance teams to deliver end-to-end solutions
Contribute to scalable, secure architecture and engineering best practices for AI delivery
Requirements:
5+ years of experience in AI/ML engineering or applied data science with production engineering responsibilities
Strong Python skills and solid software fundamentals
Experience building production LLM-powered systems, including prompt design, embeddings, fine-tuning, RAG; agent experience is a plus
Solid ML foundations; NLP, document AI, or multimodal experience is a plus
Hands-on experience with modern AI tooling (Hugging Face, PyTorch, LangChain, LangGraph) and cloud infrastructure (AWS preferred)
Strong communication and collaboration skills; comfortable working cross-functionally with product and domain teams
BS/MS/PhD in Computer Science, Data Science, or Engineering (MS/PhD a plus)
This position is open to all candidates.
 
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Location: Herzliya
Job Type: Full Time
This is a high-ownership, builder-first Sr. Software Engineer role. You will design, build, and ship AI-integrated data systems from concept through production - owning outcomes end-to-end, including deployment, monitoring, cost, and business impact.

We are seeking a candidate who views AI tooling as a fundamental force multiplier in their daily engineering process. This position is central to our transition into an AI-native function, requiring an individual capable of making decisive, pragmatic architectural choices on reversible matters to maintain momentum. We need an experienced builder of production-grade, data-centric systems who is obsessed with delivering customer value and possesses a deep, curious enthusiasm for the transformative potential of AI.

What You Will Build
AI-Native Systems Development. Design, build, and own scalable data and ML pipelines, backend services, and AI-powered capabilities that are part of the platform's production decision-making layer. AI and ML components are runtime dependencies in this role - not research projects or experiments. Candidates will have strong back end and data engineering skills to thrive in this space.
Daily Shipping. Decompose complex work into safely mergeable increments and ship them daily. Treat large, multi-day pull requests as a risk to momentum. Use feature flags, canary releases, and rollback architecture to manage risk through isolation - not through avoidance.
AI-Augmented Engineering Workflow. Leverage AI-assisted development tooling (code generation, automated testing, architecture prototyping) as a core workflow multiplier. Evaluate and experiment with emerging AI tools and frameworks with direct hands-on engagement. Bring technical depth to AI fluency - architecture and capability tradeoffs, not surface-level awareness.
End-to-End Ownership. Own your work from design through production deployment, operational monitoring, and business impact measurement. Accountability extends beyond the feature to CI/CD pipeline health, observability, cost efficiency, and domain-level outcomes.
Architectural Decision-Making. Make pragmatic, timely architectural choices that balance modern AI and data technologies with reliability, cost, and delivery speed. Distinguish reversible vs. irreversible decisions and move forward without waiting for consensus on the former. Document decisions in lightweight ADRs and own the outcomes.
Cross-Functional Collaboration. Partner with product, design, infrastructure, and GTM teams to translate customer and business needs into technical solutions. Operate with business awareness - understand how your systems impact revenue, customer outcomes, and strategic priorities.
Requirements:
Required
5+ years building and shipping production-grade back end and data systems in distributed cloud environments (AWS and/or GCP).
Hands-on AI/ML integration in production workflows. You have shipped systems where AI, LLM, or agent-based components are part of the production runtime - not just prototypes or research. You can speak to the architectural tradeoffs of integrating AI into live backend systems.
Active use of AI-assisted development tooling as a workflow multiplier. You currently use AI tooling (Copilot, Cursor, or equivalent) to accelerate your engineering output and can articulate specifically how it increases your throughput. You stay current on relevant tooling without being directed to do so.
Strong back end expertise in Java (Spring Boot), Python, and/or Go. Hands-on experience with relational and non-relational databases, data modeling, and query optimization.
Demonstrated expertise in automated testing, CI/CD, and observability.
High-Velocity ownership - candidates should thrive in high-ownership, builder-first environments where shipping daily and owning outcomes are fundamental to the role.
Demonstrated ability to break work into small, incremental deliveries and maintain strong delivery flow.
This position is open to all candidates.
 
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חברה חסויה
Location: Herzliya
Job Type: Full Time
Join our Analytics Research team and help shape next-generation Customer Engagement and Interaction Analytics solutions. You will design, research, and productionize advanced NLP and agent-based AI capabilities that autonomously reason, plan, and act across complex customer interaction workflows.
Youll work end-to-end-from foundational research and rapid experimentation to scalable deployment-building systems that combine LLMs, tools, memory, and orchestration to deliver trusted, enterprise-grade AI used by customers worldwide.
What Youll Do:
Research, design, and develop state-of-the-art NLP, LLM, and Agentic AI systems
Build and evolve autonomous and semi-autonomous agents for interaction analysis and customer engagement use cases
Advance analytics capabilities using reasoning, planning, tool use, and multi-agent collaboration
Tackle complex research problems over large-scale conversational and multimodal data
Collaborate on broader analytics initiatives, including scalable ML systems and data-intensive pipelines
Design and run experiments, evaluate agent behavior and model quality, and communicate results clearly
Take solutions from prototype to production, balancing research innovation with robustness and performance
Requirements:
M.Sc. or Ph.D. in Computer Science, AI, Data Science, or equivalent practical experience
2-3+ years of industry experience in applied ML, NLP, or AI research
Strong foundation in Machine Learning, Deep Learning, and modern LLM-based architectures
Hands-on experience with PyTorch and/or TensorFlow
Proven experience with NLP and transformer-based models
Familiarity with or strong interest in Agentic AI concepts (tool use, planning, memory, orchestration, evaluation)
Strong problem-solving skills and algorithmic thinking
Excellent programming abilities and experience delivering production-quality systems
Proven ability to design experiments, analyze results, and present insights
Strong collaboration and communication skills
Nice to Have:
Experience building or evaluating LLM-based agents or multi-agent systems
Experience owning full ML lifecycles in production environments
Familiarity with large and complex codebases and system-level design
Experience with Linux/Windows, cloud platforms (AWS, Azure), and scalable AI infrastructure
Background in speech analytics, conversational AI, or customer interaction data
This position is open to all candidates.
 
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28/05/2026
חברה חסויה
Location: Herzliya
Job Type: Full Time
Were expanding our Data & AI group and looking for a passionate, experienced Senior Data & AI Engineerto join our mission. This is a unique opportunity to work at the intersection of data engineering, LLMpowered systems, agentic workflows, and cybersecurity innovation

What youll work on
Data Infrastructure & EngineeringDesign, build, and scale production-grade data pipelines using Databricks, Spark, and modern cloud-nativetechnologies. Ensure high standards of data integrity, system performance, reliability, and scalability.
Core Backend & PlatformDesign and contribute to scalable backend services and platform capabilities using microservices andevent-driven architectures. Build reliable APIs, integrations, and asynchronous data flows that support highscale AI, data, and cybersecurity use cases.
LLM & Agentic SystemsDesign, prototype, and integrate LLM-powered systems, including Retrieval-Augmented Generationpipelines, agentic workflows, tool-using agents, multi-step reasoning flows, and AI-driven automation. Workwith technologies such as AWS Bedrock, OpenAI, Anthropic, LangGraph, vector databases, and modernorchestration frameworks.
AI-Assisted Engineering & Developer ProductivityExplore and apply advanced AI coding assistants and software-engineering agents, such as Codex andClaude Code, to improve development velocity, code quality, debugging, testing, and experimentation.Build proof-of-concepts and internal tools that help engineering and research teams work more effectivelywith AI-powered development workflows.
Intelligent Cybersecurity FeaturesCollaborate with Security Researchers, Engineers, and Product teams to identify opportunities forintelligent, data-driven features that deliver actionable cybersecurity insights to customers. Transformcomplex cybersecurity and platform data into reliable, explainable, and useful AI-powered capabilities.
Requirements:
Deep understanding and hands-on experience with data lake architectures, batch processing, andreal-time data processing.
Experience with tools and technologies such as Spark, Kafka, Databricks, and SQL.
Hands-on experience designing and building LLM-powered systems using providers such as OpenAI,Anthropic, AWS Bedrock, or similar platforms.
Strong practical experience with Retrieval-Augmented Generation, embeddings, vector databases,prompt engineering, evaluation techniques, and LLM orchestration frameworks such as LangGraphor OpenAI Agents SDK.
Understanding of agentic system design, including tool use, memory, planning, multi-agentcollaboration, and autonomous reasoning workflows.
Experience working with advanced AI code assistants and coding agents, such as Codex, ClaudeCode, or similar AI-native development tools, to improve engineering productivity.
3+ years of Python development experience in production environments.Proficiency with Git, CI/CD practices, and deploying data, automation, or AI-powered pipelines atscale.
Experience maintaining scalable, reliable AI/LLM workflows in cloud-native environments.
Strong understanding of non-functional requirements, including performance, reliability, scalability,observability, security, and cost efficiency.
This position is open to all candidates.
 
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לפני 6 שעות
Location: Herzliya
Job Type: Full Time and Hybrid work
Required Senior AI-Native Software Engineer
Role summary:
You will join a high-impact AI engineering team within R&D, owning problems end-to-end from understanding the business need, through architecture and implementation, to production monitoring. This is a new way of working: you'll work directly with business stakeholders, ship AI-driven capabilities at speed, and help define the methodology as we build it.
As a member of the AI Foundations organization, you will lead best practices, champion early adoption of new technologies, and influence the direction of our R&D guild - building and shipping cutting-edge agentic applications that deliver seamless experiences to our users.
Location:
Hybrid - Herzliya, Israel
Full-time
What you'll do:
Own the full development loop understand the business problem, define the solution, architect it, build it, ship it, and monitor it in production
Use AI as your primary development tool, achieving in a day what used to take a team a week
Collaborate with your team and business stakeholders to define decision logic, risk thresholds, and success metrics
Design and build evaluation frameworks as part of every solution you don't ship what you can't measure
Own production readiness monitoring, alerting, and observability go in on day one
Contribute to shaping team practices, tooling, and engineering standards across the pod
Decompose business problems into agentic workflows, orchestrated flows, and reusable capabilities.
Requirements:
5+ years of software engineering experience, building and operating production systems
Hands-on experience with AI/ML systems in production not just prototyping, but shipping, monitoring, and iterating
Genuine fluency with AI-powered development tools you use them daily to move faster
Experience designing agentic architectures: orchestration, multi-step workflows, RAG pipelines, fallback and error handling
Strong evaluation instincts you define metrics, build test sets, and validate before shipping
Comfortable across the full stack you move between prompt engineering, backend services, data pipelines, and infrastructure as needed
High degree of independence you lead work from problem definition to production without waiting for detailed specs
Excellent communication you flag risks early, give direct feedback, and collaborate openly Fintech or regulated-environment experience is an advantage.
This position is open to all candidates.
 
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חברה חסויה
Location: Herzliya
Job Type: Full Time
Play a part in shaping the future of human-computer interaction. As an MLOps Engineer, you will be the backbone of the machine learning infrastructure that powers our speech, audio, and conversational AI teams - ensuring their models are trained on the best possible data.
You will bridge the gap between research, data science, and engineering, owning the full ML lifecycle from large-scale data pipelines and distributed GPU training through to low-latency, high-fidelity inference and optimization. You'll partner closely with Audio ML Engineers, Speech ML Engineers, and ML Data Scientists to remove friction across their workflows and accelerate the path from research to product.

The MLOps Engineer will drive end-to-end quality and operational excellence across data ingestion, model training, deployment pipelines, and MLOps tooling for our speech and audio ML platforms. This hire will build, deploy, and optimize production-grade systems with a strong emphasis on scalable, GPU-accelerated infrastructure. You will own the training infrastructure that powers distributed and self-supervised model training on HPC and Slurm-managed clusters, as well as the inference pipelines that bring low-latency, high-fidelity audio and speech models to production. You will establish standard methodologies for model integration, deployment, monitoring, and reproducibility using CI/CD principles.

Responsibilities
Design, build, and operate large-scale data pipelines for proprietary audio and speech datasets - supporting curation, quality monitoring, and validation at scale alongside our ML Data Science team.
Partner closely with Audio ML Engineers, Speech ML Engineers, ML Data Scientists, and product teams to define metrics, gather requirements, and bring new capabilities to life.
Build and operate distributed GPU training workflows, including job scheduling and resource management on Slurm-managed HPC clusters, for both supervised and self-supervised methods.
Optimize model inference for low latency and high-fidelity streaming across serving environments, including optimization for Apple silicon.
Design and maintain automated pipelines for model training, evaluation, versioning, and deployment, with special attention to speech, audio, and signal-processing workflows.
Identify and resolve bottlenecks in ML and data workflows, improving system reliability, latency, and throughput at scale.
Requirements:
Minimum Qualifications
3 years in software engineering with demonstrated experience in large-scale software system design and implementation.
Bachelor's Degree in Software Engineering, Computer Science, Electrical Engineering, Statistics, Machine Learning, Operations Research, or a related field.
Proven track record of shipping and maintaining production-grade ML systems end-to-end.
Hands-on experience with GPU-based model training and inference, including distributed/multi-node training.
Experience operating workloads on HPC environments and job schedulers such as Slurm.
Proficiency in Python and familiarity with deep learning frameworks such as PyTorch, TensorFlow, or JAX.

Preferred Qualifications
Experience supporting speech and audio ML pipelines (e.g., ASR, TTS, speaker recognition, voice isolation, generative speech) and large-scale audio data processing.
Experience with infrastructure for self-supervised and large-model training.
Deep familiarity with GPU performance tuning, mixed-precision training, and distributed training frameworks.
Familiarity with data quality frameworks, model monitoring, drift detection, and observability practices in production
Experience optimizing models for on-device or Apple silicon inference
This position is open to all candidates.
 
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28/05/2026
Location: Herzliya
Job Type: Full Time
Build Modular AI Capabilities: Design and implement self-contained "AI Skills" that connect to the Platforms core data layers.
Ship End-to-End Autonomous Agents: Build agents that don't just "think," but act. You will deploy agents that handle the heavy lifting of the security lifecycle.

Bridge the Gap to Non-Technical Users: Create the abstractions that allow our customer success teams and client stakeholders to trigger or chain these AI workflows.

Own the AI Infrastructure & Evaluation: Maintain and contribute to the environment where these agents are born, ensuring they are grounded in truth.
Requirements:
You build for production, not for Twitter: Youve built AI agents that operate autonomously in the real world. You understand how to handle edge cases and ensure reliable, structured outputs.

Strong Product Instincts: You have a natural intuition for user experience and a "force multiplier" mindset. You identify which manual security workflows are ripe for disruption and enjoy turning them into clean, automated code.

You code at the speed of thought: You are a power user of AI-assisted coding tools (like Claude Code, Cursor, or similar) and modern LLM APIs.

You think in systems: You enjoy the challenge of connecting disparate stages-acquisition, reasoning, and mobilization-into a single, cohesive intelligence layer.

Requirements
Professional Experience: 3+ years of experience in dedicated AI development (LLMs, agentic workflows, RAG).

Senior Engineering Track: Alternatively, we value 7+ years of Senior Software Engineering experience combined with at least 1 year of deep AI development.

Education: A Bachelors or Masters degree in Computer Science or Electrical Engineering is a major bonus.

Technical Mastery: Deep proficiency in Python and the modern AI stack, with the ability to architect systems that require high reliability.
This position is open to all candidates.
 
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Location: Herzliya
Job Type: Full Time
Join our team as a Machine Learning Engineer and help shape the future of on-device AI. You'll research, design, and deploy cutting-edge deep learning models optimized for our silicon edge devices, working across the full ML lifecycle alongside hardware, software, and product teams.

We are looking for a talented and motivated Machine Learning Engineer to join our team. You will work within a collaborative, research-driven engineering culture that values innovation and rigor, with the opportunity to build impactful AI products deployed at scale on real devices. We offer competitive compensation, benefits, and opportunities for professional growth.

Responsibilities
Research and design state-of-the-art deep learning models optimized for resource-constrained our silicon edge devices.
Drive projects across the full ML lifecycle, from ideation and experimentation to production deployment.
Collaborate closely with cross-functional teams including hardware, software, and product.
Continuously evaluate and adopt new techniques to improve model performance and efficiency on-device.
Requirements:
Minimum Qualifications
M.Sc. or Ph.D. in Computer Science, Electrical Engineering, or a related field - or equivalent practical experience.
Strong foundation in deep learning theory and hands-on experience training large-scale models.
Proficiency in Python and deep learning frameworks such as PyTorch or TensorFlow/JAX.
Hands-on experience with model compression and optimization techniques (quantization, pruning, distillation, etc.).
Familiarity with on-device inference frameworks such as Core ML, TensorFlow Lite, ONNX Runtime, or TensorRT.
Experience working with multimodal data (e.g., images, audio, time-series, or sensor fusion).
Strong analytical and problem-solving skills; ability to translate research ideas into production-quality code.

Preferred Qualifications
Experience deploying models to embedded systems, mobile devices, or custom silicon (NPU/DSP).
Familiarity with hardware-aware neural architecture search (NAS) or AutoML techniques.
Exposure to low-level optimization techniques such as mixed-precision training or operator fusion.
Hands-on experience with our Neural Engine and Core ML for on-device inference.
Publications or open-source contributions in efficient deep learning or edge AI.
Experience with MLOps workflows and CI/CD pipelines for model development.
This position is open to all candidates.
 
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Location: Herzliya
Job Type: Full Time
Play a part in shaping the future of human communication technology. Contribute to a unique multidisciplinary system that models and understands human interaction, redefining what's possible with computer vision, physics, and signal processing at the edge.

In this role, you'll be at the forefront of a one-of-a-kind technical challenge, developing and implementing novel methods for processing and enhancing a proprietary sensor that models human communication. You'll work hands-on with exclusive data: designing the algorithms that process it, and defining the metrics that evaluate and drive its continuous improvement.

Your insights will carry real weight, directly informing sensor decisions and shaping the architecture of the broader system. You'll lead multi-level research efforts to advance a truly unique sensor, drawing on a rich and diverse technical toolkit spanning signal processing, computer vision, physics, and state-of-the-art deep learning. You'll own proprietary data collections using high-end computer vision techniques, studying signals from their raw-level behavior all the way through to their top-level impact on product performance.

This is a role that lives at the intersection of deep research and real-world impact. You'll conduct cutting-edge investigations and translate your findings directly into product outcomes, influencing decisions across the full stack, from hardware choices and algorithmic pipelines to the features that reach the final product.

Responsibilities
Develop and implement novel algorithms for modeling and understanding human communication, combining 2D/3D computer vision, signal processing, and deep learning.
Work with unique proprietary datasets - design large-scale data processing pipelines, define quality metrics, and provide actionable feedback to improve data collection and labeling workflows.
Devise and implement rigorous evaluation frameworks to measure model and data quality, and drive continuous improvement across the system.
Design neural network architectures optimized for SOTA accuracy and computational efficiency.
Stay current with the latest research across computer vision, signal processing, and efficient ML; evaluate and integrate relevant advances into the team's work.
Contribute to internal tooling and best practices for reproducible, scalable ML research and deployment.
Requirements:
Minimum Qualifications
M.Sc. in Computer Science, Electrical Engineering, or a related field, with a thesis in AI, computer vision, data science, or an equivalent discipline.
At least 3 years of hands-on experience in machine learning.
At least 3 years of hands-on experience in image processing and computer vision.
Strong foundation in deep learning theory and practical experience training large-scale models.
Proficiency in Python and deep learning frameworks such as PyTorch.
Background in signal processing and physics-based modeling.
Practical experience with large-scale data processing, pipeline design, and performance evaluation.
Experience utilizing modern frameworks and keeping up with recent research.

Preferred Qualifications
Knowledge and experience with 3D data (e.g., point clouds, depth sensing, 3D reconstruction).
Ph.D. in a relevant field.
Hands-on experience with model compression techniques (quantization, pruning, distillation).
Experience with MLOps workflows and CI/CD pipelines for model development.
This position is open to all candidates.
 
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25/06/2026
Location: Herzliya
Job Type: Full Time
We are seeking a highly motivated AI Solutions Engineer to join a team leading the evaluation, adoption, and integration of AI-based tools into our development processes.
This role involves identifying opportunities to enhance workflows through AI, implementing internal tools that leverage AI capabilities, and collaborating with cross-functional teams to ensure seamless integration and usability.
Responsibilities:
Lead end-to-end AI initiatives from ideation to production
Design and deploy AI agents, automations, and data-driven solutions
Partner with business and engineering teams to deliver impactful use casesDrive prioritization based on business value and strategic impact
Define KPIs and monitoring to track performance, adoption, and ROI
Provide insights to leadership and lead cross-functional efforts in a matrix environment
Lead technical AI sessions, workshops, and internal enablement programs to drive adoption and upskill teams.
Requirements:
Hands-on experience building AI solutions, agents, or automations
Strong experience with Azure and modern AI ecosystems
Hands-on software development experience
Experience with AI Agents like GitHub Copilot or Claude Code
Strong communication skills with ability to work with senior stakeholders
Strong problem-solving, systems thinking, and ownership mindset
Experience driving AI adoption and evangelizing best practices across engineering teams.
This position is open to all candidates.
 
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הגשת מועמדותהגש מועמדות
עדכון קורות החיים לפני שליחה
עדכון קורות החיים לפני שליחה
8711401
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