Jonathan Protzenko is a Principal Researcher at Microsoft Azure Research , focusing on advancing the theory and practice of software verification through formal methods and type systems. His work bridges critical security gaps in modern programming languages, with verified code integrated into major software like BoringSSL, Linux kernel, Python, and Firefox. PhD in Computer Science from INRIA Paris (2014) Formerly at Microsoft Research (9 years) and INRIA's Gallium team (2010–2014) His research spans verified cryptography (EverCrypt, HACL*), Rust verification (Aeneas, Eurydice), and computational law (Catala). Recent projects include: Rust verification (2022–present): Aeneas and Eurydice toolchains for bidirectional Rust-C compilation Verified protocol stacks (2019–present): Noise*, MLS*, and Signal* implementations Formal computational law (2020–2022): Catala for formalizing legal texts Open-source impact (2009–present): Maintaining Thunderbird add-ons His 15 most recent publications (2025–2021) highlight trends in Rust verification , secure messaging protocols , and formal methods for legal frameworks . Scientific accolades include the Internet Defense Prize and SIGPLAN Research Highlight . Notable advisees include Théophile Wallez and Denis Merigoux , who won the Gilles Kahn PhD Award . His work involves collaborations with startups like Cryspen and formal verification toolchains like KreMLin .
Titouan Carette is an Assistant Professor at École Polytechnique, affiliated with the LIX computer science laboratory and a core member of the PhiQus project—a joint Inria initiative bridging LIX (Computer Science) and CPHT (Theoretical Physics). He also contributes to the BRCP research collective, focusing on theoretical quantum computing through category-theoretic frameworks. His research centers on diagrammatic reasoning for quantum systems, specializing in string diagrams and equational theories to model quantum processes. Key contributions include advancing the ZX-calculus for quantum circuit optimization and developing graphical languages for Gaussian quantum optics, symplectic structures, and fermionic systems. Current work unifies condensed matter physics with symbolic dynamics while formalizing relational interpretations of quantum mechanics through fact-nets . Analysis of his 15 most recent publications reveals a dominant focus on scalable diagrammatic methods for quantum computing, with 70% addressing ZX-calculus extensions and quantum information foundations. His work bridges abstract category theory with practical quantum engineering, emphasizing completeness proofs and graphical simplification techniques applicable to quantum hardware design. Carette operates within École Polytechnique's Alan Turing building in Palaiseau, collaborating through PhiQus to integrate computer science and theoretical physics. His outreach efforts actively promote diagrammatic methods in quantum computing education and research communities.
Dr. Sebastian Kuckuk is a researcher and head of training at the Erlangen National High Performance Computing Center (NHR@FAU), Friedrich-Alexander-Universität Erlangen-Nürnberg. He is affiliated with the Department of Computer Science and contributes to the Chair of System Simulation. His work bridges research, training, and software development in high-performance computing. Education: PhD in Computer Science, Friedrich-Alexander-Universität Erlangen-Nürnberg (2019) His research focuses on enhancing performance portability and programmer productivity using domain-specific languages, code generation, automatic parallelization, and GPU programming. These techniques are applied to develop massively parallel numerical solvers for computational fluid dynamics, particularly for the shallow water equations. He is a core developer of the ExaStencils framework, which enables automated generation of efficient multigrid solvers for structured and patch-structured grids. Analysis of his recent publications (2020–2025) reveals a consistent focus on code generation, GPU acceleration, and solver optimization for fluid dynamics problems. Key themes include heterogeneous computing, block-structured grids, and adaptive methods. His work integrates advanced compiler techniques with numerical mathematics to improve scalability and performance on modern HPC architectures. Scientific Recognition: NVIDIA Deep Learning Institute (DLI) University Ambassador Certified Instructor for DLI courses in GPU programming and CUDA He actively contributes to teaching and training through courses such as Programming Techniques for Supercomputers and High-End Simulation in Practice . He conducts workshops and tutorials on GPU programming and performance optimization. While no formal students are listed, his mentoring role is evident through collaborative research and training activities. He has no recorded grants in the provided text, but his involvement in NHR and KONWIHR projects indicates active participation in funded HPC initiatives. Laboratories and Projects: Lead developer of ExaStencils , a code generation framework for multigrid solvers Contributor to GHODDESS , a module for higher-order discretizations in shallow water modeling Active in NHR@FAU and KONWIHR projects focused on GPU computing and performance optimization
Jennifer Paykin is a researcher affiliated with Intel and previously with Galois, Inc., actively contributing to programming languages and quantum computing since at least 2016. Her work bridges formal verification, quantum circuit design, and type theory, with notable papers on QWIRE, modal types, and higher-inductive quantum lambda calculus. Key affiliations: Intel (current), Galois, Inc. (past) Active in conference committees: PriSC , PLanQC , CoqPL , and TyDe Research interests span programming languages, quantum computing, formal verification, linear logic, and type systems. Her contributions include: Quantum circuit languages (QWIRE) Phantom type applications for quantum programs Modal types in quantum SDKs Formalizing quantum lambda calculus Secure compilation models Higher-inductive type frameworks Trends in publications show increasing focus on quantum software infrastructure (2016–2025), with recurring themes of type-driven quantum verification, circuit compilation, and logical foundations. Key collaborations include work on the SAW scripting language and flow equivalence models.
Jay Bosamiya is a Senior Researcher at Microsoft Research (mapped to Researcher academic rank) and a PhD graduate from Carnegie Mellon University (advised by Bryan Parno). His research explores the intersection of Security , Systems , and Programming Languages , focusing on provably-safe software sandboxing and memory-safe execution of unsafe code. Education : PhD in Computer Science (CMU), BTech in Computer Science and Engineering (IIT Roorkee) Key Contributions : Lucet (high-concurrency sandboxing runtime), MSWasm (memory safety enforcement), and WebAssembly security frameworks His recent publications (2020-2023) emphasize compiler design , formal verification , and secure execution environments . Notable awards include four consecutive DEFCON CTF championships (2022-2025) as a member of MushMush (MMM) and Plaid Parliament of Pwning (PPP). Beyond research, he actively participates in open-source development, CTF competitions, and occasionally shares insights on JavaScript quirks, game development, and formal methods via social media.
Deming Chen is the Abel Bliss Professor of Engineering at the University of Illinois at Urbana-Champaign, holding appointments in the Electrical and Computer Engineering Department within the Grainger College of Engineering. He serves as a research professor in the Coordinated Science Laboratory and an affiliate professor in the Computer Science department. Additionally, he is the Director of the AMD-Xilinx Center of Excellence and the Co-Director of the IBM-Illinois Discovery Accelerator Institute. Dr. Chen earned his B.S. in Computer Science from the University of Pittsburgh in 1995, followed by his M.S. and Ph.D. in Computer Science from UCLA in 2001 and 2005, respectively. After working as a software engineer during two periods (1995-1999 and 2001-2002), he joined the University of Illinois at Urbana-Champaign in 2005 and became a full professor in 2015. His research spans reconfigurable computing, AI hardware acceleration, high-level synthesis, cloud computing, and hardware security. Dr. Chen's work has significant industry impact, with open-source solutions like Medusa being integrated into NVIDIA's TensorRT-LLM, improving LLM execution speed by 1.9-3.6x. His research group pursues system-level and high-level design automation, machine learning and cognitive computing, hybrid cloud systems, hardware/software co-design, and FPGA and GPU computing. His recent publications show a strong trend toward AI acceleration and large language model optimization, with projects like SnapKV and Medusa addressing critical challenges in LLM efficiency. His work consistently bridges theoretical innovation with practical implementation, as evidenced by numerous open-source projects that have been adopted by industry. IEEE Fellow (2019) Abel Bliss Professor of Engineering (2020-present) Google Faculty Award (2020) IBM Faculty Award (2014, 2015) NSF CAREER Award (2008) Ten Best Paper Awards TCFPGA Hall-of-Fame paper award DAC International System Design Contest wins (2017, 2019) Dr. Chen has served as PI/Co-PI on over 40 research grants from US Federal agencies and industry partners. He has led numerous open-source projects including FCUDA, DNNBuilder, SkyNet, ScaleHLS, and Medusa, many of which have been adopted by industry. As Editor-in-Chief of ACM TRETS (2019-2025), he increased the journal's impact factor by 3.8x. He actively mentors students and has been recognized as an excellent teacher by UIUC students in 2008 and 2017. His research group operates at the intersection of hardware and AI, with projects spanning from low-level hardware design to high-level AI applications. The AMD-Xilinx Center of Excellence and IBM-Illinois Discovery Accelerator Institute provide substantial infrastructure for his team's research in hybrid cloud systems and AI acceleration.
Francisco Tirado is a Full Professor of Computer Architecture at Complutense University of Madrid since 1986. He has held leadership roles including Vice-Chancellor for Research (2012-2015), Dean of the Faculty of Physics (1994-2002), and Director of the Complutense Supercomputing Center (2002-2007). He is a founding member of the Spanish Society for Computer Science (SCIE) and Spanish Society for Computer Architecture (SARTECO). His research focuses on power-aware computing, heterogeneous systems, bioinformatics, and hardware design automation. He has authored over 242 publications and supervised 15 PhD theses. His professional service includes chairing 138 international conferences and serving on numerous committees for EUROMICRO, IEEE, and national research agencies. Education: No explicit details provided, but has been active at Complutense University since 1978. Affiliations: Member of COSCE Executive Board (2012), IEEE Senior Member (2005), and EUROMICRO Board (1991-2004). Research Interests: - Optimizing energy efficiency in high-performance computing systems - Design of heterogeneous architectures and accelerators - Bioinformatics applications through hardware/software co-design - Parallel programming models for emerging architectures - Automation tools for FPGA and embedded systems development Conference Contributions: Played multiple roles (General Chair, Program Chair) for major events like ParCo, HPCA, and EUROMICRO PDP conferences. Delivered 64 keynote/plenary lectures globally. Scientific Awards: Doctor 'Honoris Causa' from universities in Spain, Paraguay, and Peru 2013 National Computer Science Award IEEE Senior Membership Advising: Supervised 15 PhD students. Active in technology transfer contracts with industry. Labs/Teams: Founder and leader of the ArTeCS research group at Complutense University, specializing in computer architecture and high-performance computing innovations.
Ellen van Wolde is a Full Professor of Exegesis of the Old Testament/Source Texts of Judaism at Radboud University Nijmegen (since 2009) and Chair of the Department of Source Texts of Judaism and Christianity. Previously, she held a Full Professorship at the University of Tilburg (1992-2008) and visiting positions at the University of South Africa and the University of Sheffield. She is an Academy Board Member of the Royal Netherlands Academy of Arts and Sciences (KNAW). Education includes a PhD (cum laude) from the Catholic University of Nijmegen, an MA in Semiotics from the University of Bologna under Umberto Eco, and advanced studies in Biblical and Theological disciplines at institutions including the Pontificium Institutum Biblicum in Rome. Her research focuses on Hebrew Bible exegesis Cognitive linguistics applied to ancient texts Biblical Hebrew syntax and semantics Narratology and semiotics in religious literature Cultural and cognitive contextualization of biblical narratives Notable publications include her 2009 monograph Reframing Biblical Studies , which revolutionized methodological approaches, and groundbreaking work on the Hebrew verb bara in Genesis 1. Her research has sparked interdisciplinary dialogue and media attention, including a documentary in the KNAW series The Magic of Science . Awards include the Radboud Science Award (2010), NIAS Fellowship (2012), and knighthood in the Order of the Netherlands Lion (2011). She has secured grants for projects like The Jacob Case: Text and Cognition in Context and supervised numerous students in research programs rated among the best in Dutch academia. Her leadership has fostered collaborative conferences uniting biblical scholars and linguists.
James Long is a Professor of Accountancy at the Harbert College of Business, Auburn University, where he serves as Assistant Dean of Global Programs. His career spans academic leadership, research, and teaching excellence in accounting, financial wellness, and international business. Education: PhD in Accounting, Virginia Polytechnic Institute and State University (2009) MAcc in Accounting, Auburn University (2002) BSBA in Accounting, Auburn University (2001) Dr. Long's research focuses on how task timing affects judgment, decision-making, and performance in accounting. His work intersects behavioral accounting, audit quality, and emerging technologies like blockchain and artificial intelligence, particularly in educational contexts. His scholarly output includes publications in top-tier journals such as Accounting, Organizations & Society , Auditing: A Journal of Practice & Theory , and Journal of Accounting Education . Recent studies examine AI's role in accounting education, cryptocurrency accounting challenges, and interruptions in financial decision-making. Scientific Awards: Gerald and Emily Leischuck Endowed Presidential Award for Excellence in Teaching Alumni Undergraduate Teaching Excellence Award Harbert College's Lowder and McCartney Teaching Awards School of Accountancy Outstanding Research Award (three-time recipient) National awards for educational research articles (four-time recipient) Dr. Long has also contributed to professional practice, including a Fulbright Scholar stint in Hungary (2017), and prior industry roles as a Staff Auditor and Internal Audit Manager. He holds certifications in CIA, CMA, CPA, ABV, and CGMA, and is active in major accounting associations.
Ana Cavalcanti is a Professor of Computer Science at the University of York, UK. Her research focuses on formal methods for safety critical systems, particularly in robotics and real-time software. She leads the SER research group and has secured major funding from EPSRC and the European Commission. Education 1987 - BSc in Computer Science, Universidade Federal de Pernambuco, Brazil 1990 - MSc in Computer Science, Universidade Federal de Pernambuco, Brazil 1997 - DPhil in Computer Science, Oxford University Her work bridges formal verification, concurrency, and object-orientation, with recent projects like RoboSapiens and DOMINOS addressing trustworthy autonomous systems. She has published extensively on robotic controller verification, adaptive architectures, and ethical requirements for AI. Selected scientific accolades include the Royal Society Wolfson Research Merit Award and a Royal Society Industry Fellowship. She has held academic positions at Universidade Federal de Pernambuco (1997-2002) and the University of Kent (2002-2004) before joining York in 2004.
Vadim Zaytsev is an Associate Professor at Vrije Universiteit, specializing in Formal Methods and Tools. His research spans software language engineering, program verification, and model-driven development, with a focus on legacy systems and modernization. PhD in Recovery, Convergence, and Documentation of Languages (2008) Master's in Combinatorial Test Set Generation (2004) and Modelling Distributed Systems (2003) Bachelor's in Python Programming E-Learning (2002) Zaytsev's work integrates software language engineering , program verification , and domain-specific languages to address legacy system modernization. His recent publications emphasize data enrichment , automated repair , and refactoring detection across languages like Kotlin and Python. His scientific contributions include the IFIP TC2 Manfred Paul Award (2020) and datasets for program verification, refactoring detection, and automated repair. He actively participates in editorial work, including peer-review for workshops like OOPSLE 2020.
Alastair Reid is a researcher at Intel (2021–present) focusing on formal instruction set architecture (ISA) specifications and model checking processor pipelines. His career spans roles at Google Research (2019–2021) developing Rust verification tools, Arm Ltd (2004–2019) working on formal ISA specifications and vectorizing compilers, University of Utah (1998–2004) on component-based operating systems, Yale University (1994–1998) contributing to Haskell functional reactive programming, and University of Glasgow (1988–1994) in formal specification and verification. Ph.D. in Defining interfaces between hardware and software: Quality and performance , Glasgow University M.Sc. in A precise semantics for Ultraloose Specifications , Glasgow University B.Sc., University of Strathclyde His research interests include formal verification, security analysis, functional programming languages (particularly Haskell and Rust), and computer architecture. He has contributed to the development of machine-readable ISA specifications for ARM, RISC-V, and Intel architectures, and worked on symbolic execution tools like KLEE for Rust verification. Key publications include work on RISC-V specification improvements (2024), formal methods for persistent programming (2023), PLARCH workshop contributions on ISA specification (2023), and foundational papers on ARM processor verification with ISA-Formal (2016). His technical blog posts cover topics in symbolic execution, SMT solvers, and practical verification challenges. Contributions to conferences include committee roles in PLDI (2024), PriSC (2024), and workshop organization in formal methods and programming language design.
Diego Garbervetsky is an Associate Professor at the Computer Science Department, School of Sciences, University of Buenos Aires, and a Researcher at ICC/CONICET. He also serves as Director of the Institute of Research in Computer Sciences (ICC). His academic career spans software engineering, programming languages, and formal methods with a focus on program analysis and verification. His research interests include: Static and dynamic program analysis Reverse engineering and compiler optimizations Program understanding and validation Testing and verification of programs featuring rich protocols Automatic symbolic resource analysis (gas consumption, dynamic memory, energy, etc.) Garbervetsky's recent work focuses on smart contract analysis and verification, particularly for Solidity on Ethereum blockchain. His research bridges theoretical program analysis with practical applications in security-critical domains. He has developed several tools including Contractor for behavior validation, JConsume2 for heap memory analysis, and BudaPest for automated software verification. His scientific contributions have been presented at top-tier conferences including ICSE, FSE, ISSTA, and PLDI. Garbervetsky has served on numerous program committees for major software engineering conferences and has advised multiple PhD and undergraduate students through their research.
Adrian Sampson is an Associate Professor in the Department of Computer Science at Cornell University, where he is part of the Computer Systems Laboratory and the programming languages group. He joined Cornell in 2016 as an Assistant Professor and was promoted to Associate Professor in 2022. Prior to Cornell, he was a Visiting Researcher at Microsoft Research (2015-2016). He received his Ph.D. from the University of Washington in 2015 under advisors Luis Ceze and Dan Grossman, with a dissertation on Hardware and Software for Approximate Computing. His research focuses on breaking down abstraction barriers and rethinking the hardware-software interface. He is particularly known for his work on approximate computing, which explores how computers can be more efficient by allowing them to make controlled mistakes. He leads the Capra research group at Cornell, which investigates programming languages and computer architecture. Sampson's recent publications demonstrate a strong focus on hardware acceleration, FPGA programming, compiler design, and programming language theory. His work often bridges the gap between high-level programming abstractions and low-level hardware implementation, with particular attention to predictability, verification, and energy efficiency. He has made significant contributions to geometry types for graphics programming, timeline types for modular hardware design, and virtual machines for FPGA programming. Among his notable recognitions are the IEEE TCCA Young Computer Architect Award (2021), NSF CAREER award (2019), and multiple Distinguished Artifact Awards at major conferences. He has advised numerous Ph.D. students who have gone on to positions at institutions like Wellesley College, Northwestern University, and Amazon. Sampson is actively involved in academic service, serving on program committees for major conferences including PLDI, ASPLOS, and ISCA. He has also held leadership roles such as ACM SIGARCH Board of Directors (2023-2025) and SIGPLAN Information Director. His teaching at Cornell includes courses on computer systems, programming languages, and advanced compilers.
Arthur Azevedo de Amorim is an Assistant Professor in the Department of Computer Science at the Rochester Institute of Technology's College of Computing. His research focuses on making software more secure and reliable using techniques based on formal verification, programming languages, and type systems. Previously, he held postdoctoral positions at Boston University and Carnegie Mellon University after completing his Ph.D. at the University of Pennsylvania under Benjamin Pierce and co-advised by Cătălin Hrițcu. His educational background includes undergraduate studies in computer science and engineering at Unicamp and Polytechnique. He is also one of the authors of Software Foundations, an introductory textbook to the Coq proof assistant, and maintains an active blog about Coq. Dr. de Amorim's research spans several critical areas in programming languages and security. His work on cryptographic protocols leverages recent advances in program verification (particularly separation logic) to verify cryptographic protocols. His research on compartmentalization analyzes formal guarantees of techniques for limiting the scope of vulnerabilities in low-level languages like C and C++. These research areas reflect his commitment to bridging theoretical foundations with practical security applications. His recent publications demonstrate strong activity across multiple top-tier conferences including POPL, PLDI, CCS, and ICALP, with research spanning formal verification, secure compilation, differential privacy, and programming language theory. His work consistently combines theoretical rigor with practical applications in security and reliability. Dr. de Amorim has served on numerous program committees for major programming languages conferences including POPL, PLDI, ICFP, and CoqPL, demonstrating his active engagement with the research community. He has also contributed to important educational resources through his work on Software Foundations. He currently advises several graduate students at RIT working on various aspects of programming languages and security. His lab develops multiple open-source software projects including Cryptis (for verifying cryptographic protocols), Deriving (a Coq library for automating class instances), and Extructures (a Coq library of finite data structures).