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Windows Malware Reverse Engineer Jobs in Helotes, TX

Relevant experience working in a security domain, programming, systems architecture, vulnerability analysis, reverse engineering, malware analysis, protocol analysis, network analysis, software ...

Relevant experience working in a security domain, programming, systems architecture, vulnerability analysis, reverse engineering, malware analysis, protocol analysis, network analysis, software ...

Senior Cybersecurity Research Scientist

San Antonio, TX · On-site

$88K - $113K/yr

... malware analysis, vulnerability and reverse engineering research - Perform threat modeling and assess mitigation strategies - Produce technical reports, research artifacts, and briefings to support ...

Showing results 41-60

Windows Malware Reverse Engineer information

See Helotes, TX salary details

$70.4K

$117.1K

$167.5K

How much do windows malware reverse engineer jobs pay per year?

As of Aug 21, 2026, the average yearly pay for windows malware reverse engineer in Helotes, TX is $117,072.00, according to ZipRecruiter salary data. Most workers in this role earn between $76,500.00 and $152,900.00 per year, depending on experience, location, and employer.

What does a Windows Malware Reverse Engineer do?

A Windows Malware Reverse Engineer analyzes malicious software designed to target Windows operating systems. Their primary tasks include dissecting malware to understand how it works, identifying its behavior and purpose, and determining how it infects systems. They use specialized tools and techniques such as disassemblers, debuggers, and virtual environments to safely analyze and decode malware. The insights gained help develop detection methods, improve cybersecurity defenses, and assist in incident response.

What are the key skills and qualifications needed to thrive as a Windows Malware Reverse Engineer?

To thrive as a Windows Malware Reverse Engineer, you need strong knowledge of Windows internals, assembly programming, and malware analysis techniques, usually backed by a degree in computer science or cybersecurity. Proficiency with tools like IDA Pro, Ghidra, OllyDbg, and familiarity with common malware frameworks and relevant certifications such as GIAC Reverse Engineering Malware (GREM) are typically required. Attention to detail, analytical thinking, and strong problem-solving abilities are essential soft skills for unraveling complex threats. These competencies are crucial for identifying, understanding, and mitigating advanced malware threats that target Windows environments.

What are some common challenges faced by Windows Malware Reverse Engineers, and how can they be addressed?

Windows Malware Reverse Engineers often face challenges such as dealing with heavily obfuscated code, rapidly evolving malware techniques, and anti-analysis mechanisms designed to thwart reverse engineering efforts. These challenges require staying up-to-date with the latest tools, regularly practicing with new malware samples, and collaborating with peers to share insights. Building a strong foundation in Windows internals, assembly language, and using debuggers or disassemblers like IDA Pro or Ghidra can help overcome these obstacles and improve overall analysis efficiency.

What is the difference between Windows Malware Reverse Engineer vs Cybersecurity Analyst?

AspectWindows Malware Reverse EngineerCybersecurity Analyst
Required CredentialsKnowledge of reverse engineering, malware analysis, programming skills, certifications like GREM or GREMSecurity certifications like CISSP, CEH, or Security+; broader cybersecurity knowledge
Work EnvironmentSpecialized labs, malware analysis environments, often in security firms or R&D teamsSecurity operations centers, corporate IT teams, or government agencies
Industry UsagePrimarily in cybersecurity, malware research, threat intelligenceAcross industries for threat detection, incident response, and security policy enforcement

While both roles require cybersecurity knowledge, Windows Malware Reverse Engineers focus on dissecting malicious software to understand its mechanics, whereas Cybersecurity Analysts monitor and respond to security threats across organizations. The roles often overlap in skills but differ in daily tasks and focus areas.

Can you reverse engineer malware?

A Windows Malware Reverse Engineer specializes in analyzing malicious software to understand its behavior, origin, and impact. This process involves using tools like debuggers and disassemblers, and requires strong knowledge of assembly language, operating systems, and cybersecurity principles. Reverse engineering malware is a complex task that demands technical skill, patience, and adherence to legal and ethical standards.

How much do Windows Malware Reverse Engineers make?

Windows Malware Reverse Engineers typically earn between $80,000 and $130,000 annually, depending on experience, location, and employer. Advanced skills in reverse engineering tools and malware analysis can lead to higher salaries, especially in cybersecurity-focused organizations.

What cities near Helotes, TX are hiring for Windows Malware Reverse Engineer jobs?

Cities near Helotes, TX with the most Windows Malware Reverse Engineer job openings:

DoW SkillBridge Vulnerability Researcher (Cyber199)

Research Innovations Incorporated

San Antonio, TX • On-site

Full-time

Re-posted 24 days ago


Job description

Job Summary:
Research Innovations Inc. (RII) is redefining defense technology, combining mission-driven impact with cutting-edge research. They are seeking security researchers to independently explore and exploit complex systems, contributing to defense and homeland security systems.
Responsibilities:
• Conducting in-depth reverse engineering and vulnerability analysis across various architectures and platforms, including x86/64, ARM, PowerPC, and more
• Researching and analyzing operating system and application internals, identifying and understanding security strengths and weaknesses of those systems
• Developing and enhancing functionality by adding features and capabilities to undocumented interfaces
• Modeling and analyzing in-memory compiled application behavior to identify potential vulnerabilities and improve security measures
• Developing and understanding mobile/embedded systems and kernel modules, particularly related to vulnerability research
• Participating actively in our extensive Vulnerability Research mentorship program, sharing knowledge and collaborating with colleagues
Qualifications:
Required:
• Active US Top Secret security clearance
• Proficient understanding of wireless networking and associated security protocols, such as Wi-Fi (802.11), Bluetooth, or cellular networks (2G/3G/4G/5G). Familiarity with common vulnerabilities and attack vectors in wireless communication
• Strong grasp of legacy exploit mitigations and bypass techniques, including but not limited to Address Space Layout Randomization (ASLR), Data Execution Prevention (DEP/NX), Stack Cookies (Canaries), and Control Flow Integrity (CFI). Experience in identifying and circumventing these security measures
• In-depth knowledge of both security and network fundamentals, such as cryptography, authentication, access control, and network protocols (TCP/IP, UDP, DNS, HTTP, etc.). Understanding the security implications and potential vulnerabilities associated with these concepts
• Programming experience with both scripted languages (preferably Python3) and compiled languages (preferably C). Ability to write efficient and secure code for vulnerability research and exploit development purposes
• Familiarity with low-level architectures such as x86, ARM, or MIPS. Understanding the underlying principles, instruction sets, and memory models of these architectures for vulnerability identification and analysis
• Experience with operating system internals and implementations, including Windows, Linux, or macOS. Knowledge of system structures, process management, memory management, and security mechanisms at the kernel level
• Excellent oral, written, and interpersonal communication skills, with the ability to effectively convey complex technical concepts and interact with customers and team members alike
Preferred:
• Experience with vulnerability research and reverse engineering of real-time operating systems (RTOS), such as FreeRTOS, QNX, or VxWorks. Understanding the unique security challenges and attack vectors specific to RTOS environments
• Bachelor's or postgraduate degree in Computer Science, Computer Engineering, or a related field
• Experience with software protection and binary armoring techniques, such as anti-debugging, code obfuscation, or tamper resistance. Understanding the methods employed to protect software from reverse engineering and vulnerability discovery
• Proficiency in agile development methodologies, including Scrum or Kanban, for efficient collaboration and iterative development in a cybersecurity context
• Familiarity with low-level iOS/Android development and associated security considerations, such as jailbreaking or rooting, application sandboxing, or secure interprocess communication (IPC)
• Knowledge of hypervisors and their security implications, including virtualization-based security, guest escape vulnerabilities, or hypervisor-based rootkits
• Proficiency in malware analysis, including static and dynamic analysis techniques, behavioral analysis, and code deobfuscation. Experience in identifying and analyzing malware samples to understand their capabilities and potential vulnerabilities
• Experience with constraint solving techniques, such as symbolic execution, theorem proving, or model checking, for vulnerability identification, verification, and exploit generation
• Background in machine learning, particularly in the context of vulnerability analysis and detection, such as using ML techniques to identify patterns in code or analyze network traffic for anomaly detection
Company:
Research Innovations Inc. (RII) supports critical defense, intelligence, and cyber customers across the U.S. Founded in 2009, the company is headquartered in Alexandria, USA, with a team of 201-500 employees. The company is currently Growth Stage.